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All about Science - to remove misconceptions and encourage scientific temper

Communicating science to the common people

'To make  them see the world differently through the beautiful lense of  science'

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  • Dr. Krishna Kumari Challa

    Neuroscientists observe electrical signals in the soma and dendrites of living mice

    The human brain contains billions of neurons, specialized nerve cells that communicate with each other via electrical and chemical signals. Every neuron is made up of its body (i.e., soma), where most cellular processes occur; a long projection called an axon that sends signals to other neurons; and tree-like branches called dendrites, which receive and process incoming information.

    Originally, dendrites were viewed as "passive" components that merely collect incoming signals and do not process information. More recently, however, studies have gathered evidence suggesting that they play a more active role in the transformation of incoming signals and the brain's plasticity (i.e., its ability to alter its structure, connections and activity patterns in response to experiences).

    Specifically, neuroscientists discovered that when a neuron receives signals from other cells, dendrites integrate them and influence whether the neuron will produce a rapid electrical impulse called an action potential. After they are initiated, action potentials can also propagate backward from a neuron's soma into dendrites, a phenomenon known as back-propagating action potentials (bAPs).

    So far, observing these fast electrical events across intricate dendritic networks inside the brains of living animals has proved challenging. In a new Nature Neuroscience paper, researchers introduced an approach that allowed them to monitor these events in living mice, yielding new insights into how brain cells integrate incoming information.

    The researchers found that under the conditions they examined, voltage signals were coordinated across dendritic branches, instead of each branch behaving as an independent electrical unit. In addition, they suggest specific patterns of earlier neuron activity led to the filtering or alteration of bAPs, the electrical signals traveling back from the soma into dendrites.

    "We propose that this dendritic filtering of bAPs may have a critical role in the regulation of bursting and in activity-dependent plasticity," wrote the authors in their paper.

    J. David Wong-Campos et al, Voltage dynamics of cortical dendrites in vivo, Nature Neuroscience (2026). DOI: 10.1038/s41593-026-02339-4.

  • Dr. Krishna Kumari Challa

    Approaching sounds can warp your perception of time

    Everyone's perception of time is unique. It is a subjective experience shaped by factors such as age, emotions, memory and environmental contexts. And it may also be influenced by background noise, as scientists have demonstrated in a paper published in the journal Scientific Reports.
    Previous research has shown that approaching noise can stretch our perception of time. But in this paper, researchers discovered that even when people were concentrating on a different sound, moving sounds in the background still changed their sense of time.
    Their experiment revealed that people who listened to the approaching background sound overestimated the length of the tones by about 15%. "We discovered that an approaching background sound significantly accelerated the perceived time when compared to a receding sound," the study authors wrote in their paper.

    Participants in the receding background noise group underestimated the time by about 6%. Those in the scrambled noise group produced intermediate results. The differences between this group and the others were not statistically significant.

    So what does all this mean? This study showed for the first time that background moving sounds modulate time estimation.

    The researchers framed the results in an evolutionary context. They said that an overestimation of time when an object is approaching means that our brains are put into a state of alertness to either avoid or catch something. An underestimation of time when a sound is moving away from us occurs because a retreating object is less likely to be perceived as a threat, and therefore it requires less attention.

    The researchers also demonstrated the Vierordt effect, a well-known phenomenon that explains how our memory biases our estimation of time. Participants consistently guessed that the shortest tones (1 second) were longer than they were, while the longest tones (6 seconds) were guessed to be shorter.

    Achille Pasqualotto et al, Approaching background sounds extend the duration of foreground auditory stimuli, Scientific Reports (2026). DOI: 10.1038/s41598-026-58785-4

  • Dr. Krishna Kumari Challa

    Much of Earth's 'space dust' may come from unidentified near-Earth asteroids

    Like a shelf in an old house, the Earth collects a lot of dust from its surroundings. This "space dust" is mostly made up of micrometeorites that survive atmospheric entry and provides researchers with a cheap and easy way to obtain samples to study our cosmic neighbors. However, it can be difficult to determine which objects certain samples originated from if their parent bodies aren't already in available catalogs. A recent study, published in Science Advances, describes a new subset of space dust with such mysterious origins and how researchers are tracking down potential sources.

    Some micrometeorites, called cosmic spherules, melt upon entry, resulting in a spherical shape. These cosmic spherules lose their original mineral structure during entry heating, making their parent bodies hard to identify. In some cases, oxygen isotopes act like a chemical fingerprint, helping researchers determine where this dust came from. Yet about 10% of cosmic spherules have unusually small oxygen-16 isotope signatures that don't match any previously identified meteorite group. Researchers refer to these as the "Group 4" cosmic spherules.

    The team involved in the new study says orbital parameters could also prove useful for source identification. They write, "In one particular case, however, the mineralogical and textural properties of a subset of cosmic spherules do provide information on the orbital parameters of their precursors, including eccentricity and encounter velocity. This subset is termed CumPo after its characteristic cumulate olivine porphyritic texture, characterized by clustered olivine phenocrysts that increase in size from one side of the spherule to the other."

    The features associated with CumPo spherules suggest unusual orbital parameters that may point to atypical parent bodies, according to the researchers. In particular, prior research on these textures suggested some spherules may have experienced unusually high entry speeds, which can hint at the orbital eccentricity of the parent body.
    Part 1

  • Dr. Krishna Kumari Challa

    To try to learn more about their origins, the researchers examined 10 CumPo cosmic spherules from Antarctica and a more modern collection found on urban rooftops. They used electron microscopy and microprobe chemistry to analyze textures and key minerals and chemistry. They also measured oxygen isotopes with SIMS and NanoSIMS to fingerprint sources.

    The team found many similarities between the two collections and defined them as a new subset of sulfur-rich cumulate olivine cosmic spherules, which they call "SCumPo." The subset is strongly tied to the oxygen-16-poor Group 4 signature. The group shares a set of features that imply extremely reducing conditions during atmospheric entry. This includes an uncommon near-absence of magnetite, frequent iron-nickel-sulfur droplets, consistently low nickel in olivine crystals, and unusually sulfur-rich glass.

    Some spots within a single spherule showed both oxygen-16-poor and oxygen-16-rich signatures, implying the original dust was likely a mixture of at least two components because this does not happen naturally.

    The study authors explain, "We interpret this as strong evidence that the SCumPo precursors were composite materials containing at least two different components: one component carrying a 16O-rich signature (relatively low δ18O and negative Δ17O, typical of carbonaceous chondrite anhydrous phases) and another carrying a 16O-poor signature (high δ18O and positive Δ17O not matched to known meteorites but akin to Group 4 fine-grained material)."
    Part 2

  • Dr. Krishna Kumari Challa

    The team then ran numerical simulations of crystal settling during atmospheric deceleration to determine likely entry speeds and orbital eccentricities. The results showed that olivine "settling" will most likely occur with high encounter speeds of roughly 14–17 km/s. The team says this points to eccentric orbits (around e > 0.2), and this eccentricity is more consistent with near-Earth objects than typical main-belt asteroid sources.

    They say this parent body seems to be a previously unsampled, primitive, sulfide-rich carbonaceous asteroid related to a group of carbonaceous meteorites called the CM–CO–CY chondrite clan.

    The study authors write, "Given that we have linked their composition to the CM-CO-CY clan of carbonaceous chondrites, it is plausible that their parent body was a primitive carbonaceous asteroid that migrated onto an Earth-crossing orbit—attaining comet-like orbital parameters. For instance, one might consider the disrupted fragments of a thermally altered but water-bearing asteroid (like the CY group) that evolved into near-Earth space."

    The researchers note that this hypothetical parent body represents a "missing" meteorite type. The micrometeorite samples exist, but no meteorite like it exists in current collections. They say that future identification through asteroid missions or meteorite finds would be considered "a pivotal discovery."

    Matthias Van Ginneken et al, 16 O poor cosmic spherules from near-Earth CY chondrite asteroids, Science Advances (2026). DOI: 10.1126/sciadv.aed6340

    Part 3

  • Dr. Krishna Kumari Challa

    From mother to offspring: Young birds show how 'forever chemicals' accumulate

    PFAS (per- and polyfluoroalkyl substances) are synthetic fluorine-containing organic chemicals used in the manufacture of many household and industrial goods, as well as historically, in perfluorinated aqueous film-forming foams (AFFF) used to fight flammable liquid fires.

    The highest PFAS concentrations in wildlife are typically recorded around petrochemical manufacturing facilities and near former firefighting training areas—the Williams Laverton RAAF Base has an extensive history of the use of firefighting foams.

    New research has found young birds living near contaminated industrial and military sites in suburban Melbourne carry especially high concentrations of PFAS, so-called "forever chemicals."

    Analysis of the samples showed that PFAS levels peaked in young, newly fledged birds after the chemicals were transferred from mothers into their eggs and through the insect-heavy diets chicks are fed when being reared
    Young house sparrows near industrial and military PFAS hotspots in suburban Melbourne show elevated blood PFAS, with PFOS medians about 10-fold higher than in birds from uncontaminated sites. Concentrations peak in recently fledged chicks and decline with age, driven by maternal transfer via eggs and insect-heavy nestling diets, indicating substantial bioaccumulation and widespread environmental contamination.

    PFAS concentrations generally decreased with the age of the birds: Recently fledged chicks had the highest levels, followed by older juveniles and then mature adults.

    Consuming a diet where the main food source is invertebrates—including insects, spiders, snails and worms—is a key driver for PFAS exposure.
    Even birds that feed mainly on grains as adults shift their diets toward animal food sources like invertebrates when they're breeding, to meet the energy demands of reproduction and rearing chicks.
    Similar trends in PFAS levels with age have been reported for a wide range of species, including humans and other mammals, and this seems to be linked to transfer from mother to offspring.
    The reputation of PFAS as "forever chemicals" is based on their persistence in the environment and their potential to accumulate in living organisms, where they have increasingly been associated with health risks.

    Max M Gillings et al, Early Life Uptake and Elimination of Per- and Polyfluoroalkyl Substances in a Seasonally Invertivorous Bird, Environmental Science & Technology (2026). DOI: 10.1021/acs.est.6c02297

  • Dr. Krishna Kumari Challa

    Could endless scrolling really rot your brain? A new study suggests it might, but also says exercise could fight back
    Consider flipping through numerous videos on TikTok and YouTube within mere minutes—some news item, some dancing fad, some culinary trick and some comedy sketch. The content might grab your attention momentarily, but it's gone just like that. This pattern of consuming information so rapidly puts pressure on our working memory—a short-term memory system in which the brain temporarily stores the information required to think. Each time you flip from one piece of content to the next, you change the context of your thinking, which has led psychologists to wonder whether the brain's scratchpad gets tired from all the switching.

    Is this endless digital churn truly shredding our memory? A new study delves into this question, exploring the impact of excessive short-video use on working memory performance and how physical activity might offer a surprising countermeasure. The study is published in the journal Frontiers in Psychology.

    The concern isn't new. By 2025, TikTok alone had more than 1.6 billion active users, and the cultural impact was so profound that Oxford even selected "brain rot" as its 2024 Word of the Year. For years, parents and teachers have worried that the "thumbs-on-tech" habit shortens attention spans and impairs cognition. In fact, prior research has already associated heavy short-video use with major declines in focus and memory. But how precisely does this manifest in our brains?
    To investigate this, a new experiment put participants through a classic "2-back" working-memory test, a task designed to measure how well individuals can hold and manipulate information in their minds (checking whether each presented item matched the one from two steps back). The results were eye-opening: those identified as the heaviest video watchers consistently performed the worst on this critical cognitive assessment.

    As the researchers reported, their findings indicated that "excessive short video use was associated with poorer working memory performance, whereas regular exercise habits were associated with better behavioural performance." This direct link between high video consumption and diminished memory function provides compelling evidence for the growing concerns.
    Then came a significant twist in the findings: Exercise changed everything. Not only did the researchers divide the subjects into those who viewed videos frequently, but they also classified them according to the amount of exercise done in a day: high, low or none. Their findings were striking: The level of fitness counted for a lot. The regular exercisers performed better on the memory test and showed better working-memory functioning regardless of the number of videos consumed.
    This strong protective effect of exercise is supported by decades of research showing that exercise literally "builds up" the brain, improving cognitive functioning.

    Part 1

  • Dr. Krishna Kumari Challa

    The benefits of exercise were evident in concrete cognitive gains: the most active students significantly outperformed their sedentary peers on the working-memory tasks. Brain scans using functional near-infrared spectroscopy (fNIRS) confirmed these behavioral differences at a neural level and helped researchers further understand the underlying mechanisms. For instance, in physically fit students, the prefrontal cortex, an important area for cognitive control and decision-making, showed steadier and more efficient blood flow during the difficult memory task.

    In contrast, the brains of less active students had to work much harder and showed different patterns of activation to get similar—or often worse—results. Basically, it seemed that regular exercise created a buffer that shielded the brain from the cognitive scramble of watching too many short videos.

    Tian Feng et al, Exercise modulates behavioural and neural mechanisms of working memory in excessive short video users, Frontiers in Psychology (2026). DOI: 10.3389/fpsyg.2026.1875248

    Part 2

  • Dr. Krishna Kumari Challa

    Scientists find gas emissions from rocks may have contributed to ancient climate swings, mass extinctions

    An interdisciplinary team of scientists has uncovered new evidence about processes that may have contributed to ancient mass-extinction events, some of the most dramatic ecosystem reorganizations in Earth's history.
    They combined deep-earth geochemistry and atmospheric science to show that natural sulfur and carbon released from metamorphic rocks affect the environment in ways similar to emissions from volcanic eruptions, long considered the primary drivers of mass-extinction events.
    Evidence shows that the process that wipes out species is a climate swing, or an oscillation back and forth between hot and cold climates.

    Some extinctions are correlated with the timing of eruptions in large igneous provinces, which are massive magmatic areas that have seen lots of volcanic eruptions and lava spewing out of Earth's surface. As long as geology as a field has existed, scientists have thought that volcanic eruptions and their emissions were the primary trigger for rapid global cooling and climate swings. Now scientists found another process that contributes to these events: metamorphism.

    Metamorphism of sulfur- and carbon-bearing rocks in large igneous provinces can release substantial SO₂ and CO₂, producing sulfate aerosol–driven short-term cooling followed by long-term CO₂ warming. This mechanism can generate pronounced climate oscillations, offering an additional driver of ancient mass extinctions beyond direct volcanic degassing.
    Metamorphic processes occur when rock under Earth's surface is exposed to extreme heat, like when rock in large igneous provinces, such as the Ferrar large igneous province in Antarctica or the Siberian Traps in Russia, is heated by magma. If that rock contains sulfur and carbon, the heating process results in sulfur and carbon emissions, allowing them to seep out at ground level as gases.

    Sulfur emissions become sulfate particles in the atmosphere that act like tiny mirrors, reflecting some of the sun's energy back into space. Earth then absorbs less energy from the sun, leading to cooling spikes. Sulfates also act as "cloud seeds," attracting water vapor to form clouds with liquid droplets that disperse water more efficiently and reflect more sunlight, also contributing to cooling spikes.

    Cooling spikes are the result of sulfur, which doesn't stay in the atmosphere for more than a few days before dissipating.
    The opposite warming effect is due to carbon, which is also released in the metamorphic process but doesn't react with other particles. Carbon remains in the atmosphere for hundreds, thousands or even millions of years. Even after sulfate-driven cooling spikes, the atmosphere is several degrees warmer than before due to carbon gas continually warming while sulfur aerosols cool and eventually disappear from the system.
    Part 1

  • Dr. Krishna Kumari Challa

    Ancient extinctions that may have been influenced by these emissions include the end of the Ordovician Period around 440 million years ago, when up to 85% of shallow marine species died, including many trilobites and corals. Another occurred at the end of the Devonian Period around 370 million years ago, when many marine species, especially reef-building corals and bony armored fish like Dunkleosteus, died out.

    The end of the Permian Period, or the "Great Dying," occurred around 252 million years ago and wiped out up to 96% of marine species and 70% of land species. Around 201 million years ago, the end of the Triassic Period eliminated many groups of giant reptiles that dominated land, sea and sky, making way for the rise of dinosaurs.
    Although these events occurred millions of years ago, they provide natural experiments for investigating interactions and cycles among the solid Earth, atmosphere, oceans and biosphere. Understanding their causes helps scientists better understand the sensitivity of Earth systems to large-scale environmental change.

    Earth's systems are deeply interconnected, and major environmental changes rarely result from a single isolated process.

    Emily Stewart et al, Metamorphic sulfur release as a driver of sustained cooling and mass extinction, Science Advances (2026). DOI: 10.1126/sciadv.aee2277www.science.org/doi/10.1126/sciadv.aee2277

    Part 2

  • Dr. Krishna Kumari Challa

    Ocean acidification may be shrinking the brains of the world's most intelligent invertebrates

    An ongoing research project exploring the effects of rising levels of oceanic CO2 on squid neurology reveals that exposure to future levels of ocean acidification could shrink their brain volume by around 50%. This severe brain shrinkage appears to be most pronounced in the areas that interpret visual information, correlating with significant reductions in normal feeding behaviors and suggesting serious consequences for the future of squid and other cephalopods.
    Elevated CO₂ levels simulating future ocean acidification (pH 7.8) reduced bigfin reef squid brain volume by ~49% after 90 days, with strongest effects in visual centers (optic lobes −52%, optic tracts −62%) and no change in body size. These neural changes correlate with large reductions in hunting and feeding behaviour, implying impaired visual processing and major ecological consequences.

    https://www.nature.com/articles/s42003-025-09506-6

  • Dr. Krishna Kumari Challa

    International expert team says science alone won't save coral reefs

    Coral reefs are rapidly declining due to climate change, overfishing, pollution and habitat loss, threatening food security, coastal protection and cultural identity. The article argues that scientific research and restoration are insufficient without strong public engagement and political will. It proposes integrating science with art, design and community collaboration to translate complex data into emotionally resonant experiences, thereby motivating broader participation in reef conservation. The Coral Art-Science Consortium is introduced as a global platform to coordinate such interdisciplinary efforts and promote collective action for reef protection.

  • Dr. Krishna Kumari Challa

    Targeted phages curb Crohn's-linked gut inflammation by disabling harmful E. coli traits
    IBD affects millions, with rates continuing to rise, particularly among children. Although current treatments can be effective, they can fail long term or require escalating doses, increasing the risk of serious side effects.

    A research team at McMaster University has developed a targeted approach to treating inflammatory bowel disease (IBD) using bacteriophages, viruses that infect specific bacteria, to disarm harmful microbes without disrupting the broader gut ecosystem.
    Targeted bacteriophages directed against adherent-invasive E. coli reduced gut inflammation in experimental models of Crohn’s disease by suppressing virulence traits, particularly adhesion to intestinal cells, without eradicating the bacteria or disrupting the microbiota. Phage therapy also potentiated steroid efficacy, enabling lower doses, and stool-based functional assays may identify patients most likely to benefit.
    IBD is shaped by a combination of genetics, immune responses and the gut microbiome. The research team focused on a group of bacteria known as adherent-invasive Escherichia coli (AIEC), which have been linked to inflammation in some people with Crohn's disease. These bacteria can be difficult to identify and selectively target, making them an important test case for more precise microbiome-based therapies.
    Working with E. coli strains isolated from patients with Crohn's disease, the team used controlled experimental models to isolate how AIEC contribute to inflammation and explore ways to neutralize their harmful behaviour without damaging beneficial bacteria.
    To target AIEC without collateral damage, the team turned to bacteriophages (phages), which are naturally occurring viruses that infect bacteria with remarkable precision.

    Phages work like a lock-and-key system—each phage targets only certain bacteria. That precision gives us a way to intervene without wiping out the entire microbiome.

    The team identified and characterized phages that selectively target AIEC strains isolated from patients with IBD and found that this approach significantly reduced gut inflammation.

    The phages did not eliminate the bacteria entirely. Instead, they altered their behavior by suppressing a molecular "grappling hook" that helps AIEC attach to the gut lining and trigger immune responses. When that virulence mechanism was turned off, inflammation subsided.

    The bacteria were still there, but they lost the traits that drive inflammation as the bacteria can't do as much damage anymore.
    The researchers also found that phage therapy enhanced the effectiveness of a commonly used steroid treatment for IBD. When combined with the phage, a lower-than-standard dose produced benefits comparable to higher doses of the drug alone. While phages have previously been shown to increase the effectiveness of antibiotics, this is the first time a positive collaboration between phage and a non-antibiotic drug has been reported.

    The findings point to a precision-medicine approach for IBD.

    Kyle Jackson et al, Phage intervention improves colitis and response to corticosteroids by attenuating virulence of Crohn's disease–associated bacteria, Science Translational Medicine (2026). DOI: 10.1126/scitranslmed.adz4589

  • Dr. Krishna Kumari Challa

    'Saprotropism' helps roots avoid decaying plant matter—but not animal decay

    Decaying matter shapes life in soil, but it can also create hostile zones for growing roots.
    Researchers have now identified "saprotropism," a root response that guides plants away from decaying plant-derived matter—but not animal-derived decay.
    The study published in Science, reveals how roots adapt their growth direction by sensing local pH gradients around rot.

    Plants cannot run away from danger or toward something they desire. Instead, they adjust the direction in which they grow. Shoots bend toward light (a well-known phenomenon called phototropism), roots and shoots use gravity to grow downward and upward, respectively (gravitropism), and roots can also bend toward water (hydrotropism).

    These directional growth responses, known as plant tropisms, help plants navigate changing environments. Now, researchers from China and Austria describe a new member of this family: saprotropism, from "sapro," meaning rotten or decaying.

    The researchers first showed that direct contact with decaying plant tissue strongly inhibited root growth and activated defense pathways linked to immunity and pathogens. In other words, roots treated these decay zones as biologically threatening environments.

    Animals instinctively avoid rotten food because it often harbours harmful microbes.
    The newly identified tropism enables roots to actively bend away from decaying plant matter. In experiments, roots avoided decay zones made from "fleshy" matter such as apples or leaves, and—contrary to initial assumptions—also from woody material such as sawdust.
    However, when the researchers tested animal-derived decay, such as small pieces of chicken meat, the roots showed no directional growth response.

    One of the striking findings was therefore that the roots did not simply avoid anything rotten.
    They responded specifically to decomposing plant material. This tells us that saprotropism is not a general reaction to rot, but a dedicated response to plant-derived decay.
    The response was observed not only in the model plant Arabidopsis thaliana, but also in crop species including rapeseed, tomato and wheat—suggesting that saprotropism is widespread among plants.
    Part 1

  • Dr. Krishna Kumari Challa

    The team found that a key signal comes from microorganisms, especially fungi, as they break down dead plant material. During decomposition, fungi release acidic metabolites, including organic and phenolic acids. These compounds diffuse into the surrounding soil and create stable local pH gradients around the decaying material.

    Roots can detect this acidity pattern even before direct contact and use it as directional information, bending away from the more acidic side. However, the "plant graveyard" does not send a permanent warning signal—it stops automatically after the matter has turned into soil. "Once the plant material had almost fully broken down, the acidic warning signal faded—and the roots stopped bending away.
    How this happens
    Within the root, an external signal is transformed into a growth decision: Cells on the root surface detect that one side of the root is exposed to stronger acidity than the other. This uneven signal changes the distribution of the plant hormone abscisic acid, or ABA, across the root tip.

    As a result, the internal framework of root cells is rearranged, causing one side of the root to grow differently from the other. The root then bends away from the decaying plant material.
    Saprotropism shows how plants interpret microbial activity in the soil and make growth decisions accordingly.
    The discovery of saprotropism—a term coined by the study authors—opens new research avenues, such as how roots interpret microbial activity in soil. In the long term, a better understanding of such root behaviors could help inform approaches in agriculture, soil management and crop resilience.
    Understanding the molecular basis of saprotropism opens new opportunities to develop crops with an enhanced ability to detect and avoid pathogen-rich environments.

    Zhulatai Bao et al, Roots navigate around decay regions by sensing local pH gradients, Science (2026). DOI: 10.1126/science.adw6568www.science.org/doi/10.1126/science.adw6568

    Part 2

  • Dr. Krishna Kumari Challa

    Softening aging ovaries could help extend fertility as women get older

    Fertility declines as women get older for many reasons, such as a drop in egg quality, decreased follicle numbers and hardening of ovarian tissues. That's a problem for would-be mothers in many countries who prefer to have their children later in life, often in their 30s and 40s. Current treatments for infertility include hormone therapy and in vitro fertilization (IVF), which primarily focus on treating hormonal imbalances and helping eggs mature or be fertilized.
    But in research published in the journal Nature Aging, scientists may have found a way to help women stay fertile longer by softening their ovaries. The researchers wanted to understand why ovaries stiffen with age and whether this could provide a route for future fertility treatments.

    Finding the cause

    To discover what could be causing ovarian tissue to harden, researchers collected healthy human ovarian tissues from young, middle-aged and older women. They also sourced samples from patients with PCOS (polycystic ovary syndrome), POI (premature ovarian insufficiency) and endometriosis.

    The team measured protein levels and gene activity in these tissues and found increased levels of the inflammatory protein interleukin-11 in aging and diseased ovaries.

    To see how this might relate to stiffness, they cultured ovarian fibroblasts, the cells that produce connective tissue, in the laboratory and exposed them to the protein. They found that the protein triggered the cells to produce excess collagen, a structural material that can build up during scarring and make tissues stiffer.

    Next, the researchers genetically modified mice so they could not respond to interleukin-11. The result was that these animals had less ovarian stiffening and better ovarian function as they aged. The same was true in mouse models of chemotherapy-induced POI and PCOS.
    In the final part of the experiment, the scientists injected older mice and rats with a nanoparticle treatment containing small interfering RNA (siRNA) that could switch off interleukin-11. This caused their ovaries to become less stiff, improving fertility. In older mice, the pregnancy rate increased from 25% to 50%, while the average litter size also increased. The treatment also improved fertility in rats, with more animals becoming pregnant and producing larger litters.

    Although it is highly speculative at this stage and requires much more research, blocking this inflammatory pathway could form the basis for new fertility treatments, as the authors acknowledge in their paper.

    Meng Wu et al, Modulating IL-11-dependent matrix stiffness to delay ovarian aging, Nature Aging (2026). DOI: 10.1038/s43587-026-01159-2

    Stuart A. Cook, Targeting interleukin-11 to slow ovarian aging, Nature Aging (2026). DOI: 10.1038/s43587-026-01137-8

  • Dr. Krishna Kumari Challa

    Language of thought is not natural language

    Philosophers, linguists and cognitive scientists have debated the relationship between language and thought for thousands of years, with many arguing that we use language to think. There are good reasons to suspect a close relationship between logic and language.

    Abstract thinking has properties that look a lot like language. You can divide a thought into subcomponents, like little atoms of logical propositions, and you can combine them in a hierarchical manner to make more complex structured rules, very akin to language.
    But neuro scientists thought while we largely depend on language to communicate about logical reasoning—from presenting a problem to explaining how we have arrived at conclusions—the brain might use a separate system for the reasoning itself.
    There are aspects of thinking that seem to go beyond some of the limitations of language. Logical reasoning demands precision that language often lacks. And language is linear, progressing one word at a time, whereas evaluating available information to reach logical conclusions can require thinking in less linear ways.
    Some people find it useful to talk through their problems—but language isn't necessary for logical reasoning, cognitive neuroscientists say.
    In research published in the journal PNAS, researchers have shown that people can perform well on tasks that require logical reasoning even if their language abilities are severely impaired. What's more, brain imaging shows that language-processing parts of the brain are not called on for logical reasoning.

    The scientists worked with two patients who had experienced strokes that damaged language-processing parts of their brains, leaving them with severe impairments in both understanding and producing language. They designed language-free logic games in which participants were asked to infer relationships between sets of numbers.
    As participants solved increasingly difficult puzzles, it became clear that people don't need language for this kind of reasoning. Patients with language impairments solved the problems as well as a control group and were even able to communicate the rules they inferred using gestures or with a sketch.
    Part 1

  • Dr. Krishna Kumari Challa

    Alongside this part of the study, the researchers also used functional brain imaging to study what happens in the brains of healthy adults when they are engaged in logical reasoning. Participants in this part of the study visited MIT for a series of MRI scans, which captured images of their brain activity during an array of tasks.
    Here, too, a separation between language and logic was clear: The MRI scans showed the brain's language system is not engaged for either inductive reasoning (when participants identified hidden rules) or deductive reasoning (when they assessed the validity of syllogistic conclusions).

    Surprisingly, the multiple demand network, which many scientists had suspected was important for logical reasoning, was engaged during inductive reasoning but didn't seem to get involved in deductive reasoning.
    The findings strongly support a separation of logic and language in the brain.

    Hope Kean et al, Evidence from formal logical reasoning reveals that the language of thought is not natural language, Proceedings of the National Academy of Sciences (2026). DOI: 10.1073/pnas.2520095123

    Part 2

  • Dr. Krishna Kumari Challa

    Volcanoes and wildfires are adding water vapor to the stratosphere, raising climate concerns

    Moderate volcanic eruptions and extreme wildfires since 2005 have led to an increase in the amount of water vapor in the stratosphere, a layer of Earth's atmosphere above the weather-filled troposphere. That's potentially bad news because water vapor here acts like a greenhouse gas that traps heat and changes ozone chemistry.

    The findings are presented in a paper published in Nature. But the scientists not only provided the first direct observational evidence that this is happening, they also explained the mechanisms behind it. The journal's editors have also published a Research Briefing explaining the work.

    Previously, only massive volcanic eruptions, such as the 1991 eruption of Mount Pinatubo, were thought to significantly increase stratospheric water vapor (SWV). But this research shows that the cumulative effect of smaller events can also drive climate variability. "Episodic aerosol perturbations from moderate volcanic eruptions and extreme wildfires therefore emerge as a previously overlooked driver of SWV variability," the study authors wrote in their paper.

    The team pulled together 17 years of monthly atmospheric data from a number of sources. These included SWOOSH, which tracks stratospheric water vapor; GNSS satellite measurements used to estimate temperatures near the tropopause; and GloSSAC, a global dataset of stratospheric aerosol levels.

    They organized the data into two categories: aerosol-influenced months (following recent volcanic activity or megafires) and clean months. They also ran computer models to simulate climate with and without the volcanic and wildfire aerosols to ensure natural weather cycles weren't skewing the data.

    The paper revealed that between 76 million and 203 million tons of water vapor were added to the stratosphere during the study period. The researchers estimate that aerosol-driven increases explain about 36% of the observed rise in stratospheric water vapor between 2005 and 2021. According to the team, the climate impact from these fires and volcanoes was comparable to that from the global surface temperature increase.

    The scientists also suggested two ways these particles pump moisture into the upper atmosphere.

    The first is volcanic and wildfire aerosols that absorb and scatter radiation, thereby warming the tropopause, the boundary layer between the stratosphere and troposphere. This warming raises the amount of water vapor the air can hold, allowing more to enter the stratosphere.

    The second is a process called aerosol self-lofting, which only happens with extreme wildfires. Dark, light-absorbing carbon in wildfire smoke absorbs sunlight, heats up and becomes buoyant. This causes the smoke plumes to rise into the stratosphere, carrying water vapor straight up with them.

    As extreme fires intensify in a warming world, the researchers emphasize that predictions of the ozone layer, future warming and the overall composition of the stratosphere must account for these aerosol-driven processes.

    Yifeng Peng et al, Moderate volcanic eruptions and extreme wildfires humidify the stratosphere, Nature (2026). DOI: 10.1038/s41586-026-10731-0

    Volcanoes and wildfires contributed to increased stratospheric humidification, Nature (2026). DOI: 10.1038/d41586-026-02011-8

  • Dr. Krishna Kumari Challa

    Biomni—an AI-powered biomedical co-scientist
    Biomni is an AI-driven biomedical research agent that automates full workflows, including literature review, hypothesis generation, data integration, analysis, visualization, and code execution across 25 biomedical subdomains. It uses ~150 tools, 105 software packages, and 59 databases, providing traceable, reproducible outputs that substantially reduce manual effort while keeping humans responsible for scientific judgment and decision-making.

    Biomedical research is increasingly constrained by repetitive, fragmented workflows that slow discovery. Now researchers introduced Biomni, a general-purpose biomedical artificial intelligence agent that autonomously executes diverse research tasks. To map the biomedical action space, Biomni’s action-discovery agent mines tools, databases, and protocols from thousands of publications across 25 domains, building a unified agentic environment. Its general-purpose architecture integrates large language model reasoning with retrieval-augmented planning and code-based execution, dynamically composing workflows without predefined templates. Systematic benchmarking shows strong generalization across heterogeneous tasks—causal gene prioritization, drug repurposing, rare-disease diagnosis, microbiome analysis, and molecular cloning—without task-specific tuning. Real-world case studies demonstrate Biomni interpreting multi-modal datasets, optimizing protein stability, orchestrating wet-lab instruments, and generating experimentally testable protocols. Biomni envisions artificial intelligence augmenting human scientists and accelerating discovery.

    https://www.science.org/doi/10.1126/science.adz4351

  • Dr. Krishna Kumari Challa

    Why some people are more bothered by low-frequency sounds

    Some people are more sensitive to low-frequency noise, such as from ventilation systems, heat pumps, wind turbines and transformers. Why is that?
    The brain perceives low-frequency sounds in a completely different way from other sounds. Maybe that's why some people react more strongly to them.

    Sound below 16 Hz is what professionals like to call infrasound. This is sound that is often considered impossible to hear. But that's not the case.

    Humans can actually perceive infrasound if the sound level is high enough.
    Some people are more sensitive to low-frequency noise. It can come from ventilation systems, heat pumps, wind turbines, industry, transport, generators or transformers. But this is difficult to measure because the sound is often perceived more as a hum or physical sensation than higher-frequency sound is.

    Low-frequency sound and infrasound are detected via a mechanism in the inner ear that differs from normal hearing. When frequencies are very low, conventional sensory hair cells respond weakly, and supporting cells instead generate electric fields sufficient to activate auditory nerve signals. This nonlinear mechanism can make small pressure increases seem much louder and may vary between individuals, explaining differing sensitivity to low-frequency noise.

    Now new research suggests that infrasound is registered in the inner ear in a different way than normal sound.

    Inside the inner ear, there are specialized sensory hair cells that are crucial for transmitting sound signals to the brain.

    But at very low frequencies, the signals to these hair cells become too weak, and other hair cells, which normally contribute to the hearing process, can still pick them up.
    These support cells, which normally receive signals from the brain to regulate hearing sensitivity, generate electric fields that are strong enough to trigger nerve signals sent to the brain, so that infrasound is perceived.
    Maybe that's why very low-frequency sounds feel different from other sounds.

    This may explain why infrasound is experienced differently than normal sound. Small increases in sound pressure quickly make the sound much louder.
    The findings may also help explain why some people are bothered by low-frequency noise while others are not, as the newly discovered mechanism may vary from person to person.

    Carlos Jurado et al, Infrasound sensation is mediated by intracochlear electrical potentials, Scientific Reports (2026). DOI: 10.1038/s41598-026-50179-w

  • Dr. Krishna Kumari Challa

    Eye Movements Form a Unique Gaze Fingerprint

    Eye movements reveal personal 'fingerprints' as people explore unfamiliar scenes
    Eye-tracking during exploration of virtual scenes showed that individuals have stable, distinctive gaze patterns that reflect personal conceptual priorities. Machine-learning models, especially those using large language model–derived conceptual descriptions of viewed objects, reliably identified individuals from these patterns, even across sessions one week apart. Results suggest gaze can act as a persistent biometric and potential clinical marker, while raising privacy concerns in VR/AR contexts.

    Conceptual priorities shape individual gaze patterns during natural...” by Amanda J. Haskins, Katherine O. Packard, and Caroline E. Robertson. PNAS
    DOI:10.1073/pnas.2604369123

  • Dr. Krishna Kumari Challa

    Natural forests survive heat waves better than planted forests

    When a record-breaking drought and heat wave swept across China's Yangtze River Basin in 2022, forests across the region faced an extreme test. The event provided a rare opportunity for researchers to test how different forests respond when rising temperatures and water shortages strike at the same time.
    The basin is home to some of China's most important forests, which help prevent soil erosion, regulate water supplies and support biodiversity. As China's largest river basin, the Yangtze is also a major hub for water resources and economic activity, meaning healthy forests play a crucial role.

    Following widespread deforestation and major flooding events, including the devastating 1998 Yangtze River flood, China launched large-scale tree-planting programs to restore forests and reduce soil erosion.

    But as climate change drives more frequent and intense combinations of drought and extreme heat, researchers wanted to understand whether these planted forests could cope with increasingly challenging conditions and how they respond compared with forests that developed naturally. The study focused on compound drought–heat wave events, where unusually hot and dry conditions occur at the same time.

    These events can be particularly damaging because plants face two stresses at once: a lack of water in the soil and increased water loss through their leaves. These combined stresses can threaten not only forest health but also the wider services forests provide, such as storing water and regulating runoff.

    The results revealed a trade-off. Natural forests were better able to withstand the harsh conditions, suffering less damage during the event, while planted forests experienced greater vegetation loss but recovered more quickly once the extreme weather had passed.
    The findings, published in Water Resources Research, reveal a balance between two important aspects of forest resilience: the ability to resist damage during a weather event and the ability to recover afterward.
    During the extreme weather, natural forests proved more resilient in the short term. They suffered less damage from the drought and heat wave, with more than 70% of areas analyzed showing that natural forests were better able to withstand the conditions.

    The researchers suggest this stronger resistance may be linked to the greater complexity of natural forests. They typically contain a wider variety of tree species that respond differently to drought and heat, different tree ages and more layered canopies, creating a varied ecosystem that can better buffer extreme conditions.

    Planted forests, by contrast, are often made up of fewer species and trees of similar ages. This simpler structure can make them more vulnerable to extreme conditions because they respond to stress in the same way.
    The study highlights that there is no single measure of a forest's ability to cope with climate extremes and shows why protecting remaining natural forests remains crucial, even as tree planting continues to be an important tool for restoring degraded landscapes.

    The researchers suggest that improving the diversity and structure of planted forests could help make them more resistant to future climate extremes.

    Yong Su et al, Higher Vulnerability But Faster Recovery in Planted Than Natural Forests During the 2022 Compound Drought–Heatwave in China's Yangtze River Basin, Water Resources Research (2026). DOI: 10.1029/2026wr044482

  • Dr. Krishna Kumari Challa

    Children back group claims over evidence, but privacy reduces bias, experiments reveal

    A team of psychology researchers has found evidence of partisan behavior in children ages 5 to 9—they frequently endorsed their own group's claims even when evidence suggested otherwise, indicating group affiliation influenced their responses. However, the scientists also uncovered a potential remedy to such responses: When incentivized to tell the truth about what they had seen or when they could provide answers under the veil of privacy, the children were much less likely to adopt their own group's claims. The paper is published in the journal Cognition.

    Even young children will side with their group over the evidence of their own eyes, but mainly when they're responding publicly and when being accurate doesn't count for much.
    However, if you allow them to respond in private or give them a reason to care about accuracy, the partisanship effect disappears.
    Partisanship may start not as a conviction about what's true, but as a way of showing you belong or you're loyal to your group. But there's an encouraging implication here, too: Conditions that reward accuracy or that lower the social stakes of an answer can pull people back toward the evidence.
    The impact of privacy and "truth incentives" was clear: Children who answered privately were more likely to accurately report what they saw than those who answered publicly. Similarly, those in the truth-incentive group were more likely to accurately report what they saw than those who received no such incentive.

    Belonging, not belief, drove bias
    Taken together, the experiments indicated that children's partisanship appears to be less about a search for truth and more about a desire for social connection, the authors conclude—and point to potential remedies for diminishing responses not supported by evidence.

    Bethany Lassetter et al, Investigating the origins of partisanship: What motivates children to preferentially endorse their ingroups' claims?, Cognition (2026). DOI: 10.1016/j.cognition.2026.106629

  • Dr. Krishna Kumari Challa

    Your Medicine Cabinet Is Polluting The Ocean

    Over-the-counter medication makes up the majority of pharmaceutical pollution in several rivers across the world, and may persist in rivers long enough to spread into coastal waters.

    The everyday medications in our homes may be a major source of water pollution. A recent study of Hong Kong’s major rivers revealed that common over-the-counter (OTC) drugs accounted for 85 percent of pharmaceutical pollution in the wet season compared to just 13 percent for prescription medicines.

    We often assume that complex or restricted prescription medications pose the greatest environmental risk, but our findings shine a new light on everyday household medicines.

    Because medicines are designed to be effective when taken orally, they often have molecular properties that make them mobile in water.

    However, these properties also allow them to easily travel in river environments, through estuaries and eventually enter the ocean, where they can pose threats to marine ecosystems. Pharmaceutical residues have been found even in deep seas and remote marine environments.

    Pharmaceutical pollution is not a local pollution issue at a specific site. Hence, we should adopt a river-estuary-sea perspective to prioritise pollutants for control and management.

    https://www.sciencedirect.com/science/article/pii/S2590182626000500...

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  • Dr. Krishna Kumari Challa

    Study reports the first detection of a sugar in interstellar space

    Sugars are key biomolecules in living organisms, as they form the backbone of DNA and RNA and play a fundamental role in metabolic processes. In theories of the origin of life, sugars are also essential for the synthesis of the first nucleic acids. Despite their importance, one of the major questions in origin-of-life research is how the first sugars formed on Earth, since laboratory experiments show that they do not form in sufficient quantities under prebiotic conditions.
    Sugars such as ribose and glucose have previously been detected in meteorite and asteroid samples, suggesting that some of these molecules may have originated in the primordial molecular cloud from which our solar system formed. However, until now, no sugar had ever been directly detected in the interstellar medium.
    An international team has now identified the first sugar in interstellar space: erythrulose. This molecule is the only possible four-carbon ketose, and on Earth, it is commonly found in raspberries and sunless tanning products. Erythrulose was detected toward the molecular cloud G+0.693−0.027, located near the center of our galaxy, the Milky Way.

    The discovery was made possible by ultrasensitive, broadband spectroscopic surveys carried out with the 40-m Yebes radio telescope and the 30-m telescope of the Institute for Radio Astronomy in the Millimeter Range (IRAM).
    The team identified 12 spectral lines matching the laboratory spectrum of erythrulose measured at the University of the Basque Country. The study also shows that this sugar is at least eight times more abundant than similar three-carbon sugars, none of which were detected in the same region.
    Based on the abundance of erythrulose measured in the G+0.693−0.027 molecular cloud, the researchers estimate that between 0.5 and 50 million metric tons of this sugar could have reached Earth's surface during the Late Heavy Bombardment, which occurred approximately 4.1–3.8 billion years ago.

    The presence of erythrulose in interstellar space therefore provides an alternative source of sugars that may have contributed to the emergence of the first metabolic and replication processes on early Earth.

    The detection of erythrulose is very exciting because it opens up the possibility of discovering in space other sugars such as ribose, which is part of RNA, and other important molecules for the origin of life.

    Izaskun Jiménez-Serra, Detection of a four-carbon sugar in interstellar space, Nature Astronomy (2026). DOI: 10.1038/s41550-026-02905-7www.nature.com/articles/s41550-026-02905-7

  • Dr. Krishna Kumari Challa

    Seven-year study finds non-surgical valve replacement holds up as well as open-heart surgery
    The incidence of cardiovascular disease is rising across the globe, with more than 28 million people worldwide living with heart valve disease. Each year, surgeons perform thousands of heart valve replacement procedures.
    As treatment options evolve, the profile of patients undergoing these surgeries is also changing. As transcatheter aortic valve replacement (TAVR) is increasingly considered for younger, lower-risk patients, researchers sought to explore a broader question: Which heart valve replacement approach offers better long-term durability and healthier valve function?

    In the recent randomized PARTNER 3 trial, researchers compared TAVR, a minimally invasive procedure, with traditional open-heart surgery to see how the two approaches performed over the long term.

    The study followed low-risk patients for seven years after their procedures and found encouraging results for both TAVR and surgery, with excellent outcomes and comparable valve durability. Both groups experienced very few valve-related problems over seven years, with similarly low rates of valve failure, valve wear and tear, and the need for another procedure.

    The long-term follow-up revealed one important difference: Blood clots (thrombosis) occurred more frequently after TAVR, affecting 5.2% of patients compared with 0.9% of those who underwent traditional heart surgery.
    Part 1

  • Dr. Krishna Kumari Challa

    The heart works as a one-way pump, moving blood into the organ with every beat. Heart valves help maintain this steady flow by opening to let blood pass through and closing to keep it from moving in the wrong direction. Each valve responds to pressure changes within the heart, causing its thin flaps to open at the right moment and then seal shut once blood has passed.

    Valve disorders take two main forms. The first is regurgitation, in which the valve doesn't close completely, so blood leaks backward instead of flowing forward. This means less blood moves in the right direction and puts extra strain on the heart.

    The second is stenosis, in which the valve opening narrows or stiffens, blocking blood flow and forcing the heart to pump harder to push blood through the tight opening. Depending on the severity of the condition, doctors decide whether it can be treated with medication, repair or replacement.

    Aortic stenosis is one of the most common heart valve diseases, affecting millions of people worldwide. It is typically treated by replacing the aortic valve through either open-heart surgery (SAVR) or the less invasive TAVR.

    While surgical bioprosthetic valves are designed to last 10 years or more, some can wear out much sooner, within five to seven years, with certain valve types showing a higher risk of early failure. There is still limited information comparing how well TAVR valves perform beyond five years, especially in low-risk patients.
    In this study, the researchers sought to understand whether a less invasive procedure could provide results comparable to traditional surgery over time. They recruited 1,000 patients considered low-risk, meaning they were healthy enough to undergo open-heart surgery safely.

    Participants were then randomly assigned to one of two groups: One received TAVR using the SAPIEN 3 valve, while the other underwent traditional open-heart surgical valve replacement. Over the seven years, patients had regular echocardiograms at set intervals: 30 days, one year, annually through year five, and again at year seven.
    They found that only a small number of patients experienced significant valve deterioration, with similar rates between the two groups—7.3% for TAVR and 7.6% for surgery. Valve failure also occurred at similar rates, affecting 6.9% of TAVR patients and 7.5% of surgical patients, with 6% of TAVR patients and 5.5% of surgical patients needing a second valve procedure.

    Overall, about 75% of patients in both groups were alive with a fully functioning replacement valve at the end of the study.

    The results strengthen the case for TAVR, alongside conventional surgery, as a long-term alternative for low-risk patients. The researchers noted that these findings could help guide treatment choices based on each patient's needs and preferences. However, they suggested that if TAVR is chosen, patients should be monitored for early valve thrombosis so it can be identified and managed when needed.

    Julien Ternacle et al, Seven-Year Valve Durability With Transcatheter or Surgical Aortic Valve Replacement, JAMA Cardiology (2026). DOI: 10.1001/jamacardio.2026.2299

    Part 2

  • Dr. Krishna Kumari Challa

    Scientists strike invisible gold in the deep sea—locked inside fool's gold

    Pyrite, an iron sulfide ore, is often known as fool's gold because its shiny metallic luster and pale brass-yellow color can easily fool the untrained eye into mistaking it for real gold. This time, however, 360 kilometers (220 miles) south of Tokyo, scientists have uncovered invisible gold within pyrite structures found deep beneath the ocean at the Higashi-Aogashima Knoll Caldera hydrothermal field.
    With the help of robotic submarines that dived more than 700 meters (2,300 feet) below sea level, researchers collected rock samples from volcanic vents and underwater mounds scattered across the floor of a deep-sea caldera. Peering inside these rocks using secondary-ion mass spectrometry through tiny drill holes, they discovered that the minerals at this site contain record-breaking concentrations of gold, reaching as high as 1.9 wt% (19,231 ppm).
    Instead of being present as gold granules or nodules, as found in conventional gold mines, the metal was locked as a solid solution within the crystal lattice of seafloor pyrite. This discovery, published in Scientific Reports, could give geologists a new way to identify promising mining sites around the world.
    What surprised the researchers most was how the gold existed. Instead of forming tiny nuggets trapped inside the mineral, the gold was woven directly into pyrite's crystal structure, atom by atom. They also found that this could only happen when elements such as arsenic, lead and copper were present. These elements cause structural distortions in the pyrite lattice, creating vacancies that allow gold atoms to fit within the crystal and become trapped.

    This was reflected in the positive gold-arsenic correlation, in which gold concentrations increased alongside arsenic concentrations. This occurs because arsenic substitutes for sulfur in the pyrite structure, creating space for the larger gold ions to enter.
    Not all pyrite, however, was equally rich in gold. The concentration depended on where it was found and under what conditions it formed.

    Yuichi Morishita et al, SIMS discovers invisible gold in pyrite from the high-grade seafloor hydrothermal deposits in the Higashi-Aogashima knoll caldera, Izu-Ogasawara arc, Japan, Scientific Reports (2026). DOI: 10.1038/s41598-026-58760-z

  • Dr. Krishna Kumari Challa

    Bacteria from gum disease may cause inflammation, harden heart valves

    Gum disease bacteria may spur calcium buildup in the heart's aortic valve, leading to a common and serious heart valve disease, according to preliminary, independent research presented at the American Heart Association's Basic Cardiovascular Sciences Scientific Sessions 2026, held in Boston, July 13–16, 2026.

    Porphyromonas gingivalis, a key periodontal pathogen, was enriched in calcified aortic valves and, in mice, accumulated in valves, increased calcification, and induced aortic stenosis–like changes. These effects were reduced by antibiotics and markedly attenuated when IL‑1β was deleted, implicating an IL‑1β–mediated inflammatory pathway linking periodontal disease to calcific aortic valve stenosis.

  • Dr. Krishna Kumari Challa

    We may still be choosing our friends like it's the Stone Age

    Choosing friends may involve more than clicking with others who share our interests or outlooks. According to new research, people may select friends based on traits that made them valuable survival partners in our evolutionary past.
    The standard social psychology view of friendship is that we are strategic in selecting friends, choosing people who can help us achieve our goals. Examples include networking for a job, studying for an exam or finding a roommate.

    But this new study, published in the journal Evolution and Human Behavior, argues that friendship evolved as a long-term cooperative partnership critical for survival when humans were hunter-gatherers.

    According to this view, we look for traits such as cooperativeness, competence, social status and physical attractiveness, even if those attributes are not directly useful for our current goals. "Friend choices are sometimes goal-relevant and sometimes guided by evolved 'social taste buds,'" the study authors commented in their paper.

    In the first study, researchers reported that participants preferred friends who seemed cooperative, dominant, attractive and of higher social status. Among these traits, cooperativeness, physical attractiveness and dominance emerged as the strongest predictors of friendship interest.

    Men were much more likely than women to offer their email address to a potential friend, despite rating their partners as similarly desirable overall.

    The results from the second study revealed that the traits that make a face seem like a desirable friend did not consistently match what participants needed to achieve their everyday goals. This supports the evolutionary theory of friendship selection, although the findings do not rule out the possibility that current goals also play a role, as the researchers noted.

    "The majority of variance in friend desirability judgments comes from preferences that are not goal-calibrated."

    So while we may think we are choosing friends to help us with our modern lives, our ancient instincts may also be calling the shots behind the scenes.

    Adar B. Eisenbruch et al, What do people want in a friend? Cues of ancestral cooperative partner value predict same-sex friend preferences, Evolution and Human Behavior (2026). DOI: 10.1016/j.evolhumbehav.2026.106919

  • Dr. Krishna Kumari Challa

    Typhoons mix up bacteria and biochemistry

    After a typhoon surprised a research cruise, scientists took advantage of the unique sampling opportunity to reveal rapid changes in bacterioplankton communities and biogeochemical cycling.

    Typhoons are becoming more frequent and more intense as a result of climate change, and scientists are working to understand the transient but impactful changes these storms have on ocean biogeochemistry.

    A typhoon stirs the ocean's stratified water, redistributing nutrients and organisms and changing seawater temperature and salinity.

    Previous research found that this mixing process can change the makeup and activity of bacterioplankton communities and stimulate primary productivity. Those two changes can temporarily alter the water column's food web and its role as a carbon sink or source.

    The present research found that nutrient concentrations, primary production and bacterial activity all increased after the storm.

    The researchers also documented a shift in community structure. Contrary to their expectations, overall bacterioplankton diversity did not change. But the composition of bacterial communities became more homogeneous between distantly spaced layers of the water column. Copiotrophic taxa that thrive in nutrient-rich conditions increased, while oligotrophic taxa that prefer low-nutrient conditions decreased.

    These observations have given scientists novel insights into how typhoons enhance microbially mediated biogeochemical cycling in the ocean. As storms increase, this could affect whether the ocean acts as a local carbon source or sink.

    Yi‐Hsuan Lo et al, Typhoon‐Induced Vertical Mixing Rapidly Reshapes Bacterioplankton Communities Across Ocean Depths, Journal of Geophysical Research: Oceans (2026). DOI: 10.1029/2025jc023738

  • Dr. Krishna Kumari Challa

    Why some people are more prone to negative emotions than others

    Why are some people particularly prone to anxiety, worry or stress, while others remain more composed? An international study shows that the amygdala—previously considered central to these processes—apparently does not explain differences in people's susceptibility to anxiety, worry and stress. Instead, the researchers identified brain networks involved in body awareness, movement and visual processing as more significant predictors of individual susceptibility to stress. The findings have now been published in Nature Communications.

    Neuroticism and related negative emotionality were not reliably explained by amygdala activity in emotional fMRI tasks. Limited predictability of individual stress susceptibility instead arose from large-scale networks involved in interoception, motor control, and visual processing, indicating that distributed brain systems, rather than single regions, underlie vulnerability to stress.

    People differ significantly in how often and how intensely they experience negative emotions. Psychologists summarize these differences under the term "neuroticism." They include, among other things, anxiety, depressive moods and increased susceptibility to stress. Pronounced negative emotionality is considered a major risk factor for various mental illnesses and has therefore been the focus of neurobiological research for many years. Until now, the amygdala was considered the most important brain region underlying these personality traits. However, the scientific evidence was contradictory.

    For many years, the amygdala has been regarded as the central hub for negative emotions. However, the new wrok results show that this assumption cannot be confirmed by the functional MRI paradigms commonly used to date. This does not mean that the amygdala is unimportant for emotions. However, it does not seem to provide a reliable explanation for stable differences between people.
    The results showed that while neuroticism as a whole could not be reliably predicted based on brain activity, individual susceptibility to stress could be predicted to a limited extent. Brain networks that process information about one's own body, control movements and integrate visual stimuli were particularly relevant. It was not the emotional centers that had previously been the focus of attention, but rather these large-scale networks that provided the most meaningful clues to individual susceptibility to stress.

    The results suggest that the neural basis of emotional personality traits is more complex than previously thought. Rather than individual brain regions, large-scale networks that link perception, bodily sensations and action planning may play a decisive role.
    Emotional personality traits apparently do not originate in individual brain regions, but rather through the interaction of distributed brain networks, the researchers concluded.

    M. Sicorello et al, The functional neurobiology of dispositions towards negative emotions, Nature Communications (2026). DOI: 10.1038/s41467-026-74565-0

  • Dr. Krishna Kumari Challa

    Patients who suffer heart attack have more micro and nanoplastic in their blood

    People who suffered a serious heart attack had higher levels of micro- and nanoplastics in their blood compared with patients diagnosed with chronic ischemic heart disease and those with normal blood vessels supplying the heart, according to a study published in the European Heart Journal this week.
    Patients with ST-elevation myocardial infarction showed higher prevalence and diversity of micro- and nanoplastics in coronary and peripheral blood than patients with chronic coronary disease or normal coronaries, with polyethylene predominating. Microplastic presence correlated with smoking, long-term PM2.5 exposure, and elevated inflammatory markers, indicating an association between plastic exposure, systemic inflammation, and acute cardiovascular events without establishing causality.
    The study also revealed that people who smoke and people exposed to higher levels of air pollution had higher levels of micro- and nanoplastics in their blood.

    The researchers say the study adds to growing evidence that environmental pollution may affect cardiovascular health.
    Among those who had heart attacks, micro- and nanoplastics were detected in 84% of patients, compared with 40% of patients with chronic ischemic heart disease and 32% of patients with normal coronary arteries. Heart attack patients had a greater variety of plastic types in their blood. The most common type of plastic was polyethylene, which is commonly used in packaging and consumer products.

    Patients exposed to higher long-term levels of air pollution (PM2.5/particles measuring 2.5 μm or less in diameter) were more likely to have microplastics in their blood, and smokers were six times more likely to have microplastics in their blood. All patients who smoked and were exposed to higher air pollution levels had plastics in their blood, compared with only 12.5% of patients who did not smoke and were not exposed to higher levels of air pollution.
    The findings suggest that smoking might make it easier for micro- and nanoplastics to enter the bloodstream via the lungs. Air pollution may act in a similar way.
    The emerging clinical evidence now suggests a potential link between NMPs and cardiovascular disease. In patients undergoing carotid endarterectomy, NMPs were detected within atherosclerotic plaques, and their presence was associated with an increased risk of myocardial infarction, stroke and all-cause mortality.

    Micro- and nano-plastics in the coronary circulation and air pollution exposure in ischaemic heart disease presentation, European Heart Journal (2026). DOI: 10.1093/eurheartj/ehag447

  • Dr. Krishna Kumari Challa

    Immune response to otherwise harmless yeast becomes a problem in Crohn's disease
    Candida-specific Th17 responses target a narrow set of vesicle-derived fungal proteins, likely shaped at the oral mucosa, with shared T cell clones detected in mouth and gut. In Crohn’s disease, these pre-existing Th17 cells accumulate in the intestine and adopt a pathogenic, tissue-damaging profile. This identifies Candida-reactive Th17 cells and their trafficking/IL‑23 dependence as potential therapeutic targets.

    Almost everyone carries Candida albicans. The yeast colonizes human mucous membranes—for example, the oral mucosa and the intestine—usually silently, without causing any problems. The immune system learns early on how to deal with it. It develops specialized immune cells known as Th17 cells, which keep the fungus in check. What exactly these cells do in the healthy body, where they originate and why they can become harmful in Crohn's disease have now been systematically uncovered by a research team from the Excellence Cluster "Precision Medicine in Chronic Inflammation" (PMI) at Kiel University. The study was published today in the journal Immunity.
    The immune system controls Candida albicans using a specific class of immune cells, the Th17 cells. They patrol human mucous membranes and release signaling molecules that control the fungus. Each of these Th17 cells responds to a specific target, known as an antigen.

    The yeast Candida albicans possesses thousands of such potential target structures. One would expect that Th17 cells recognize many of them, resulting in a broad, diverse immune response against a wide range of fungal proteins. Yet the opposite is the case: the Th17 response is directed against a surprisingly small selection of fungal proteins, derived primarily from extracellular vesicles. These are tiny particles that Candida actively releases into its surroundings, essentially serving as signals to the environment.

    That these vesicles exert such a strong influence on the Th17 response was previously unknown.
    The entire Candida-specific Th17 repertoire concentrates on a handful of proteins from extracellular vesicles .This focused response is likely connected to the vesicles themselves. "The mucosal barrier probably acts as a filter: under healthy conditions, it may be primarily the vesicles that can pass through, meaning that probably only these proteins are available to the immune system.
    Until now, it was unclear where exactly these Candida albicans-specific Th17 cells originate. The new findings suggest that the oral mucosa plays an important role in this process. A particularly high number of Th17 cells can be detected there. This is biologically plausible: The oral mucosa is a key site of contact between Candida and the human body. The immune system likely encounters the fungus there frequently, which may contribute to the development and activation of corresponding immune responses.
    Researchers were able to demonstrate exactly this: Identical immune cell clones appear in both the oral mucosa and the intestine. And the most important driver of this overlap appears to be Candida albicans. This suggests that the mouth and gut are immunologically more closely connected than previously assumed.

    Part 1

  • Dr. Krishna Kumari Challa

    When control is lost

    In healthy individuals, the Candida-specific Th17 cells remain in a stable, regulated state. In the inflamed intestines of patients with Crohn's disease, this changes. These cells accumulate in the gut but carry molecular markers indicating that they were initially shaped in the oral mucosa. They are therefore not newly generated cells, but familiar ones in an unfamiliar environment.

    However, this new environment alters their behaviour. They retain their original specificity and continue to recognize the same small selection of fungal proteins, but they acquire additional properties associated with a potentially tissue-damaging immune response. What changes is not the target of the immune response, but the way in which it is executed.
    The findings open up a new perspective on chronic inflammation in Crohn's disease. Existing therapies often suppress large parts of the immune system. The new findings could enable a more targeted approach in the future.

    Gabriela Rios Martini et al, Antigen-restricted Candida albicans Th17 cells link oral-gut immunity and adopt pathogenic features during intestinal inflammation, Immunity (2026). DOI: 10.1016/j.immuni.2026.06.013

    Part 2

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  • Dr. Krishna Kumari Challa

    Uranium-Eating Bacteria Leave Just 5% of The Radioactive Metal in Toxic Mine Water, Scientists Discover
    The first evidence that bacteria can convert toxic uranium dissolved in water into a stable chemical compound.
    One of the world's largest uranium mines, the Wismut GmbH Schlema-Alberoda operation in what was then Soviet East Germany, left behind a toxic legacy.

    But within the contaminated water that has since flooded the mine, evolution may already be brewing up a solution.

    The mine site was closed in 1990, with the reunification of Germany, and has since been subject to costly and time-consuming remediation efforts.

    In its retirement, the underground mine became flooded with water, which has required continuous treatment.

    You may already be aware that raw uranium is highly radioactive, and exposure to it – for instance, by drinking contaminated water – can cause serious damage to humans and other living things.

    Yet, some organisms are actually making a living in the uranium-laden mine water; it's home to an entire ecosystem of microbes.

    And, as scientists have recently discovered, those microbes can actually stabilize uranium under certain conditions.
    The research was led by microbiologists and resource ecologists at the Helmholtz-Zentrum Dresden-Rossendorf (HZDR) in Germany and the University of Granada in Spain, who published their results in the journal Nature Communications.
    When researchers incubated the bacteria with glycerol, they found that the bacteria converted uranium into a pentavalent state.

    When uranium is pentavalent, it has an unusual oxidation state of +5, which changes how it bonds to other elements, making it easier to 'lock up' within stable minerals.
    Uranium usually occurs with a valency of 4 or 6. Pentavalent uranium does exist, but it is rare or only transient. Until now, it had been seen in an unstable oxidation state.
    In the presence of the bacteria, pentavalent uranium is then combined with iron and oxygen to form FeU(V)O4 – a compound that scientists were already aware of but have yet to give a 'common' name to.

    What they didn't know was that it could form in nature, let alone that bacteria were involved.
    In the experiments conducted, after 130 days, only around five percent of the uranium dissolved in the water remained in the samples.
    The bacteria had not only incorporated the uranium into their cell walls, but an unusually high proportion of that uranium was pentavalent. This meant it more readily formed FeU(V)O4, especially when the water samples were dried and exposed to oxygen.
    Perhaps these bacteria could be allies in our quest to clean up nuclear contamination across the world.
    "Although derived from a single geochemical scenario, the processes identified here are broadly applicable to other contaminated waters," the authors conclude.

    https://www.nature.com/articles/s41467-026-72560-z

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  • Dr. Krishna Kumari Challa

    Microplastics reach even 2,000 meters below the ocean surface, study finds

    Microplastics were detected in 92% of deep-sea hydrothermal vent animals (>2,000 m), averaging 3.42 particles per individual, with polystyrene most common. Grazing snails concentrated microplastics in digestive organs, whereas filter-feeding mussels showed widespread tissue distribution. Specimens from the Indian Ocean had up to 14.7-fold higher body-weight–normalized microplastic loads than those from the southwestern Pacific, indicating strong regional and biological influences on deep-sea microplastic accumulation.

    Won-Kyung Lee et al, Oceanic determinants of microplastic bioaccumulation in fauna of deep-sea hydrothermal vents: Comparative study of the southwestern Pacific and Indian Oceans, Water Research (2026). DOI: 10.1016/j.watres.2026.126245

  • Dr. Krishna Kumari Challa

    Are we missing the universe's 'noosignatures?'

    Astrobiology has long been split into two camps: a search for "biosignatures" and a search for "intelligence." These look for very different things, but they also leave a huge gap in between. It took 3.5 billion years for us to go from the first microbe to a civilization that sent radio waves into the cosmos. Detecting life in between those stages is a relatively untouched aspect of astrobiology—which is also the focal point of a new paper, "Signs and Signatures of Intelligence," available on the arXiv preprint server, by astrobiologists.

    Before we get into that missing middle ground, we should review the two typical astrobiological categories. Biosignature searches focus on chemical traces like oxygen and methane that suggest biological activity. By contrast, "technosignatures" represent the observable products of advanced technology—like radio waves or massive planetary-scale engineering projects.

    Civilizations don't just pop up from microbes and start emitting radio waves, though. It's an evolutionary process that takes billions of years. If an alien civilization had turned a telescope toward Earth 10,000 years ago (or alternatively, is viewing Earth from 10,000 light-years away), it wouldn't have seen any radio waves. But it also wouldn't have been looking at a world covered only in simple microbes. So how do we quantify this "middle ground" and incorporate it into our larger study of astrobiology?
    The text proposes “noosignatures” as detectable traces of intelligence that fall between biosignatures and technosignatures, such as tools, architecture, complex communication, or agriculture-driven geochemical changes. Using Assembly Theory, objects with high assembly indices are distinguished from products of chance, potentially revealing past or failed intelligences. This reframes astrobiological targets as a continuum of signatures rather than a biosignature–technosignature dichotomy.
    Researchers now suggests using a new term called noosemiotics, which represents an empirical research framework for the search for noosignatures. So what is a noosignature? According to "Signs and Signatures of Intelligence," it's a structured trace that a mind leaves on a medium. That sounds very philosophical, but there are some hard bounds to it. Noosignatures can be physical, such as stone tools or architecture, and signal-based, such as complex animal communication. But a crucial detail is that they must remain detectable as the product of intelligence, even if we can't decipher what they mean.
    Part 1

  • Dr. Krishna Kumari Challa

    Examples have already cropped up on Earth. We might never be able to decipher the Indus Valley script, but we know that it was created by someone with intelligence. It is a physical residue of cognitive activity that can be easily differentiated from purely biological processes.

    But how would you actually measure this? Researchers suggest using a new idea called Assembly Theory, which measures the "assembly index" of an object. This is the number of joining operations required to construct it from basic elemental components. If an object has an assembly index above a certain threshold, this means it cannot simply arise by random chance; it requires a mind to make it.

    Earth has tools going back 3.3 million years that would pass this test, such as the Lomekwian assemblage. But noosignatures don't have to be just tools. Agriculture significantly affected Earth's nitrogen cycle around 8,000 years ago, leaving a detectable trace of intelligence thousands of years before we ever invented a radio dish.

    The beauty of this idea is that it captures worlds that developed some level of intelligence but whose intelligences then failed to solve the coordination problem of sustaining an (at least moderately) cooperative planetary civilization. They might have lasted for geological timescales but never sent a single radio signal. In this case, a noosignature might be the only evidence that intelligence existed on a given world at all.

    The idea is still very new and has a lot of kinks to work out. Noosignatures will decay over time if not maintained—information requires a physical substrate to persist long enough for our telescopes to detect it. But natural self-organization can also be hard to distinguish from noosignatures. Assembly Theory is still in its infancy when dealing with macroscale archaeological structures or complex crystals that can form naturally.

    More importantly, relatively few scientists have explored this problem. At this year's Astrobiology Science Conference, there were 23 dedicated sessions on biosignatures, one on technosignatures and zero dedicated sessions for intelligence research, with only one abstract. Maybe, with the publication of "Signs and Signatures of Intelligence," astrobiologists will start to look at astrobiological signatures as more of a continuum rather than a graph with two distinct peaks. If they do, there's a chance they'll start discovering planets where life falls into this middle category. That is a possibility that should get everyone in the field excited.

    Julia DeMarines, Signs and Signatures of Intelligence, arXiv (2026). DOI: 10.48550/arxiv.2606.28437

    Part 2

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  • Dr. Krishna Kumari Challa

    In search of life beyond our solar system: Atmosphere detected on a habitable-zone rocky world

    In a major milestone in the search for life on other planets, astronomers have detected, for the first time, an atmosphere surrounding an Earth-like, rocky planet orbiting within the habitable zone of another star. The finding provides the strongest evidence yet that worlds with conditions similar to Earth in composition and temperature, with the potential to support life, could exist beyond our solar system.

    This is the first time anyone has found an atmosphere on a rocky planet in the habitable zone of another star.

    Published in Science, the study reports observational results detecting helium escaping from the atmosphere of LHS 1140 b, a rocky exoplanet about 48 light-years from Earth. Motivated by theoretical predictions, the discovery provides evidence that the planet possesses an atmosphere.

    The planet orbits a red dwarf star within the star's habitable zone, or the region where temperatures and environmental conditions are within the range that could support liquid water on the planet's surface.

    Collin Cherubim, Helium escaping from the atmosphere of a nearby rocky exoplanet orbiting in a habitable zone, Science (2026). DOI: 10.1126/science.aea9708www.science.org/doi/10.1126/science.aea9708

  • Dr. Krishna Kumari Challa

    A step toward lab‑grown sperm: Scientists turn stem cells into early sperm cells in a mini‑testis
    Some men experience fertility problems. One of the many causes of male infertility is a failure in germline development, the process by which embryonic cells develop into sperm or eggs. Finding treatments has been challenging because there are no laboratory models that accurately mimic how sperm develop, but a recent study brings us a step closer.

    In a recent study published in Cell Stem Cell, scientists presented a recipe for transforming human blood-derived cells into immature primate sperm precursor cells in a mini-testis-like environment.

    The researchers started with induced pluripotent stem cells (iPSCs) from humans and rhesus macaques, which are blank-slate cells that can be programmed to become almost any cell type. By exposing them to specific chemical signals, the researchers transformed them into primordial germ cell-like cells (PGCLCs), which are lab-grown versions of the earliest embryonic cells that eventually develop into germline cells, in this case sperm cells.
    Germ cells cannot mature on their own and require a supportive environment, or niche. To provide this, the researchers combined the human or monkey germ cells with supportive cells from mouse fetuses. Together, these cells self-organized into a three-dimensional structure called a xenogeneic reconstituted testis (xrTestis), which mimics the basic structure of a natural testis.
    The survival of our species depends on the successful production of sperm and egg cells, which carry genetic information from one generation to the next. In males, sperm development is a long and carefully coordinated process that begins before birth and continues throughout life, with immature cells passing through several stages before becoming fully mature sperm.

    Mistakes in germline development can cause infertility or birth defects in children. It is important to understand how this process works at a molecular level, using systems that closely mimic how sperm develop in humans. While rodent models have been valuable for studying reproductive biology, they do not fully capture primate development because of differences at both the structural and molecular levels.

    To address this challenge, the researchers developed a multistep system to grow and mature primate sperm cells outside their natural environment. They started with induced pluripotent stem cells (iPSCs) from human blood cells and rhesus monkey connective skin tissue. These cells were then converted into the earliest sperm-forming cells found during embryo development.

    Inside the mini-testis, seminiferous tubules began to form. These are coiled structures within the testes where sperm are made. What grew in this setup closely resembled both the appearance and gene activity patterns of real human germ cells during the early stages of sperm development.

    Part 1

  • Dr. Krishna Kumari Challa

    Using this process, the researchers successfully generated human germ cells and, for the first time, macaque (monkey) spermatogonia—undeveloped male germ cells found in the testes—from stem cells. These macaque cells closely matched naturally occurring cells from living humans and monkeys, showing up to 97% similarity.

    The study also identified two proteins, NANOS3 and DND1, as essential factors that maintain germ cell viability and prevent them from differentiating into other cell types, a common behaviour of stem cells. The researchers further showed that retinoic acid, a form of vitamin A, acts as the trigger that starts the maturation process in these cells.

    Eoin C. Whelan et al, Generation of spermatogonia from human and non-human primate pluripotent stem cells, Cell Stem Cell (2026). DOI: 10.1016/j.stem.2026.06.001

    Part 2

  • Dr. Krishna Kumari Challa

    Frog protein could become first antidote to deadly red tide toxin

    The "red tide" algal blooms that are becoming more frequent along the Pacific coast produce one of the most potent neurotoxins known: saxitoxin, or STX. The toxin accumulates in shellfish and causes paralytic shellfish poisoning (PSP) when consumed.
    There is no antidote for STX, which was stockpiled as a chemical weapon during the Cold War. But a new study is likely to change that.

    In research published in Nature Communications, a research team found that a protein called saxiphilin can neutralize saxitoxin in mice, preventing and even reversing otherwise lethal poisoning.

    The protein, which occurs naturally in bullfrogs and other frogs from around the world, acts like a molecular sponge. It binds tightly to saxitoxin in the bloodstream before the toxin can reach the nerve and muscle cells it normally attacks.
    The protein not only improved survival but also reduced symptoms associated with severe poisoning, with no harmful side effects. The team also discovered that saxiphilin spread throughout the body, reaching the brain, heart and muscles, allowing it to intercept the toxin wherever it travelled.
    With harmful algal blooms becoming more frequent worldwide, the discovery could have important public health implications.
    This discovery may also guide researchers to antidotes for other naturally occurring toxins found in harmful algal blooms.

    Nature Communications (2026). DOI: 10.1038/s41467-026-75136-z

  • Dr. Krishna Kumari Challa

    Animal war preparation: What animals do before going to war

    Intergroup conflict is rife throughout the natural world, being found in social species from ants to primates.
    Conflict over resources such as territory, space, food or mating exerts a powerful evolutionary force on social species, potentially affecting fitness and survival, say the researchers. Traditionally, research has focused on actions between rival groups during contests and the behavioral consequences afterward. But evolution can also select for preemptive behaviors that maximize the chances of winning in a conflict.

    What is becoming very clear is that preemptive behaviour is widespread whenever intergroup conflict is found.
    Social animals use a suite of preemptive behaviors in anticipation of conflict, including staying quiet, monitoring their surroundings, conducting raids and bonding through play. In a review published in Trends in Ecology & Evolution , researchers describe how environmental cues and memories of past events can trigger these behaviors. Over generations, these prewar preparations could affect sociocognitive evolution, population dynamics and community structures.

    There is growing evidence that the amount of anticipatory behavior displayed is dependent on the current threat level. More is seen when rivals are more likely to be encountered, larger in size, less familiar or more likely to attack.
    Humans have long been known to prepare for warfare by increasing surveillance, using elevated areas to gather information, conducting ambushes and raids, and moving quietly through enemy territory to avoid detection. Recent studies of wild animals provide similar examples of preparation for encounters with rival groups.
    Observations of chimpanzees have revealed that groups tend to rest on hilltops in areas where intergroup contests occur rather than engage in noisier activities such as feeding or traveling. In addition, experiments have shown that dwarf mongooses respond to olfactory or vocal cues of rivals by moving more slowly and engaging in sentinel behaviors, which allow them to monitor their surroundings more easily.

    The threat of intergroup conflict can also influence animals' space-use patterns. To signal territorial ownership, dwarf mongooses deposit more scent marks in response to simulated rival intrusions, and meerkats tend to scent mark near burrows examined by intruders. Similarly, black howler monkeys return to locations of past contests, potentially to advertise their presence to neighbors.

    By contrast, Japanese macaques, chacma baboons and long-tailed tits avoid areas inhabited by rivals.
    Part 1

  • Dr. Krishna Kumari Challa

    Beyond space-use patterns within a commonly used area, a more extreme preemptive behavior is raiding—actively seeking out rivals on their home turf. For example, male chimpanzees silently invade neighboring territories in single file and move toward other groups' vocalizations, apparently preparing to attack rivals. Banded mongooses also engage in lethal gang attacks, conducting raids to kill the offspring of rival groups.

    When the threat from outsiders is greater, various mammal species stay closer to one another. For instance, chimpanzees groom and play with one another more in advance of collective territory defense. Such behaviors likely facilitate communication, reduce anxiety, enhance bonding and promote a stronger fighting force.

    There is increasing evidence that nonhuman animals adjust various behaviours to enhance information gathering, incentivize contest participation, reduce anxiety, and minimize collective and individual risk in anticipation of encounters with rival groups. These behaviours occur across a diverse range of social species.

    Pre-emptive behavior in a landscape of intergroup conflict, Trends in Ecology & Evolution (2026). DOI: 10.1016/j.tree.2026.06.002

    Part 2

  • Dr. Krishna Kumari Challa

    Small dung beetles take a big bite out of farm methane

    Dung beetle activity in cattle dung reduced cumulative methane emissions by 85% and overall greenhouse gas emissions by 18% over 90 days. Beetle colonization maintained near-zero methane flux, accelerated early CO2-dominated aerobic decomposition, and induced lasting aeration effects after beetles left, indicating a significant biotic control on manure-derived emissions.

    Key findings include:

    Methane elimination: While control dung pats exhibited methane spikes on days 6 and 16, pats colonized by dung beetles maintained near-zero methane fluxes throughout the 90-day experiment.
    Fast-forwarded decomposition: Beetle activity shifted the decomposition pathway, accelerating the initial release of lower-impact carbon dioxide within the first 14 days compared with dung pats without beetles.
    Lasting structural impact: The climate-regulating signature of the beetles persisted long after the insects had physically left the dung pat (most departed by day 23), indicating the physical aeration and tunnelling by beetles induced long-lasting changes to the microbial environment.

    Jean Holley et al, Introduced dung beetles suppress methane emissions from cattle dung and alter the temporal dynamics of greenhouse gas flux, Ecological Entomology (2026). DOI: 10.1111/een.70112

  • Dr. Krishna Kumari Challa

    India's monsoon rain depends on where air gets cleaner
    Global aerosol reductions enhance Indian monsoon rainfall more than South Asian cuts alone, with all-India rain increasing 0.28 mm day⁻¹ versus 0.19 mm day⁻¹. Pollution reductions over East Asia can locally increase rain there but decrease it over parts of India via circulation changes, indicating that coordinated international air-quality policy is critical for managing monsoon-dependent water resources.

    Ankit Bhandekar et al, South Asian monsoon response to regional aerosol emission reductions: insights from RAMIP, Environmental Research: Climate (2026). DOI: 10.1088/2752-5295/ae7fad

  • Dr. Krishna Kumari Challa

    Facial movement analysis detects deepfake videos with more than 95% accuracy

    A self-supervised deepfake detection method analyzes discrepancies between audio-predicted and observed facial movements using a 53-parameter FLAME expression model. Pre-trained on >450 hours of video and personalized with ~60 s of target footage, it attains >95% accuracy on standard benchmarks and Sora 2 videos, outperforming supervised, artifact-based detectors.

    Kaede Shiohara et al, ExposeAnyone: Personalized Audio-to-Expression Diffusion Models Are Robust Zero-Shot Face Forgery Detectors, arXiv (2026). DOI: 10.48550/arxiv.2601.02359

  • Dr. Krishna Kumari Challa

    Sleep disorders don't just exhaust you, they change your brain

    Sleep disorders may do more than leave people feeling tired. New research from Florida International University shows that sleep disorders are associated with structural changes in brain regions involved in attention, motivation and decision-making.

    Sleep disorders are associated with structural brain alterations, including thalamic (pulvinar) reductions linked to impaired attention and cognitive control across dyssomnias and parasomnias. Parasomnias additionally show changes in the posterior cingulate cortex, related to motivation, decision-making, and emotion regulation, indicating partly shared and partly distinct neural substrates.

    Researchers identified decreases in the thalamus, a brain region critical for filtering information, maintaining focus and supporting higher-level thinking. They specifically found structural changes in the pulvinar, part of the thalamus that helps direct attention and regulate cognitive control.
    These changes were also linked to broader brain networks involved in focus and task performance, helping explain why disrupted sleep can contribute to slower responses, impaired decision-making and an increased risk of mistakes and accidents.
    The study also uncovered patterns unique to parasomnias. Researchers found structural changes in the posterior cingulate cortex, a region involved in motivation, decision-making and emotional regulation. These findings may help explain why people with parasomnias sometimes experience changes in mood, behavior and emotional control.

    Researchers did not find consistent structural changes unique to dyssomnias, suggesting different sleep disorders may affect the brain in distinct ways depending on how sleep is disrupted.

    Katharine E. Crooks et al, Sleep disorders and structural alterations in brain regions linked with motivation: a neuroimaging meta-analysis, Scientific Reports (2026). DOI: 10.1038/s41598-026-40818-7