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Sepsis is a life-threatening condition arising from the body's overreactive response against an infection, leading it to injure its own tissues and organs. The first known reference to "sepsis" dates back more than 2,700 years, when the Greek poet Homer used it as a derivative of the word "sepo," meaning "I rot."
Despite dramatic improvements in understanding the immunological mechanisms behind sepsis, it still remains a major medical concern, affecting nearly 50 million people globally each year. Sepsis accounted for 11 million deaths worldwide in 2017, and is the most expensive medical condition in several countries.
The body's response to infection starts when immune cells recognize components of the invading pathogen. These cells then release molecules like cytokines that help eliminate the infection. Cytokines are a broad group of small proteins that recruit other immune cells to the site of infection or injury. While cytokines play an essential role in the immune response, excessive and uncontrolled cytokine production can lead to a dangerous cytokine storm associated with sepsis. Cytokine storms were first seen in the context of graft versus host disease, arising from transplant complications. They can also occur during viral infections, including COVID-19. This uncontrolled immune response can lead to multi-organ failure and death.
Among the hundreds of cytokines that exist, tumor necrosis factor, or TNF, stands tall as the most potent and the most studied for nearly the past 50 years.
Tumor necrosis factor owes its name to its ability to induce tumor cells to die when the immune system is stimulated by a bacterial extract called Coley's toxin, named after the researcher who identified it over a century ago. This toxin was later recognized to be lipopolysaccharide, or LPS, a component of the outer membrane of certain types of bacteria. LPS is the strongest known trigger of TNF, which, once on alert, aids in the recruitment of immune cells to the infection site to eliminate invading bacteria. In normal conditions, TNF promotes beneficial processes such as cell survival and tissue regeneration. However, TNF production must be tightly regulated to avoid sustained inflammation and continuous proliferation of immune cells. Uncontrolled TNF production can lead to the development of rheumatoid arthritis and similar inflammatory conditions. In infection conditions, TNF must also be tightly regulated to prevent excessive tissue and organ damage from inflammation and an overactive immune response. When TNF is left uncontrolled during infections, it can lead to sepsis. For several decades, studies of septic shock were modeled by investigating responses to bacterial LPS. In this model, LPS activates certain immune cells that trigger the production of inflammatory cytokines, in particular TNF. This then leads to excessive immune cell proliferation, recruitment and death, ultimately resulting in tissue and organ damage. Too strong of an immune response is not a good thing. Researchers have shown that blocking TNF activity can effectively treat numerous autoimmune diseases, including rheumatoid arthritis, psoriatic arthritis and inflammatory bowel disease.
However, TNF blockers have been unsuccessful in preventing the cytokine storm that can arise from COVID-19 infections and sepsis. This is in part because exactly how TNF triggers its toxic effects on the body is still poorly understood despite years of research.
Studying sepsis might provide some clues as to how TNF mediates how the immune system responds to infection. In acute inflammatory conditions such as sepsis, TNF blockers are less able to address TNF overproduction. However, studies in mice show that neutralizing TNF can prevent the death of the animal from bacterial LPS. Although researchers do not yet understand the reason for this discrepancy, it highlights the need for further understanding how TNF contributes to sepsis.
Blood cells made in the bone marrow, or myeloid cells, are known to be the major producers of TNF. So researchers wondered if myeloid cells also mediate TNF-induced death.
First researchers identified which particular molecules might offer protection from TNF-induced death. When they injected mice with a lethal dose of TNF, they found that mice lacking either TRIF or CD14, two proteins typically associated with immune responses to bacterial LPS but not TNF, had improved survival. This finding parallels their earlier work identifying these factors as regulators of a protein complex that controls cell death and inflammation in response to LPS.
Next, we wanted to figure out which cells are involved in TNF-induced death. When we injected a lethal dose of TNF in mice lacking the two proteins in two specific types of myeloid cells, neutrophils and macrophages, mice had reduced symptoms of sepsis and improved survival. This finding positions macrophages and neutrophils as major triggers for TNF-mediated death in mice.
Their results also suggest TRIF and CD14 as potential treatment targets for sepsis, with the ability to both reduce cell death and inflammation.
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Three shifting immune states in sepsis could explain why treatments miss their window
Researchers have mapped how the immune response in people with sepsis changes over time. The work could help pave the way for treatments that target the specific parts of the immune system that are altered over the time course (trajectory) of sepsis illness in adults.
Sepsis is a life-threatening condition that occurs when the immune response to infection misfires. In sepsis, vital organs fail, and the condition can be fatal even when treated quickly. It's estimated that there are over 160 million cases and about 21 million deaths from sepsis worldwide each year.
Current treatments for sepsis focus on treating the underlying infection with antimicrobials and providing supportive care for failing vital organs. Despite efforts to treat the misfiring immune system, none have successfully improved outcomes for patients.
In the new study, published this week in Immunity, researchers sought a more detailed understanding of the immune response mechanisms that change over time in patients with sepsis.
They analyzed blood samples collected at four different time points (between admission to and discharge from critical care) from critically ill patients with sepsis . To build a detailed picture of the immune response, called an "immune profile," the researchers examined multiple layers of immune response information in the blood samples, including data on immune cells, gene expression and changing protein expression.
Using machine learning approaches, they then combined these layers of information to generate a more comprehensive immune profile for the first time in patients with sepsis.
The analyses revealed an immune trajectory with three distinct temporal immune states (referred to as STImS) between admission and recovery, with each state involving different immune cell activity and immune response programs.
Importantly, these sepsis immune states didn't match the clinical stage of sepsis. For example, the "early" immune state (STImS1) was not the same as the early clinical stage of sepsis, which is often the day a clinician diagnoses sepsis.
The researchers say these findings could have important implications for determining how best to treat patients with sepsis—specifically, which treatments to use and when.
The main aim of this work was to build a profile of sepsis immune responses over time. When people are admitted to a hospital with sepsis, they are usually classed as having 'early' sepsis—but the new findings show that this isn't necessarily the case—their immune system may already be at later stages of the immune response. Knowing exactly what is happening to a patient's immune system during sepsis could identify which treatments are likely to work best.
This research shows the importance of looking at the changing architecture of the immune system in sepsis over time, rather than just taking a snapshot view. We need to find better ways to treat the misfiring immune system. Only by understanding the intricacies of the immune system in all its component parts—by integrating and dynamically mapping cell and molecular immunobiology to determine why the very system designed to protect us from infections is misfiring in sepsis—can we begin to improve outcomes for patients by treating the misfiring immune system, say the researchers.
The researchers say the next step for this work is to understand what causes changes in the immune system between the onset of infection and the development of sepsis. Understanding these changes could help identify new treatment targets and approaches to reduce either progression to sepsis or the severity of sepsis, with the potential to improve outcomes and make a difference in the lives of millions affected by serious infections worldwide.
Temporal Analyses of Immune Responses in Sepsis Reveal Asynchrony Between Clinical stage of illness and Immune State, Immunity (2026). DOI: 10.1016/j.immuni.2026.08.003. www.cell.com/immunity/fulltext … 1074-7613(26)00325-0
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