Active Lungs & Breathing Infection & Immunity

Understanding hypoxic and inflammatory reprogramming of neutrophil responses to inform anti-inflammatory strategies

In plain English

AI plain-English summary

Neutrophils—the immune system's first responders—carry a memory of low oxygen long after they leave the bone marrow, and that memory can make inflammation worse. This matters because when neutrophil responses go awry, they drive diseases like acute respiratory distress syndrome (ARDS), where the lungs become dangerously inflamed. The problem is that current treatments don't distinguish between helpful and harmful inflammation. The research team has discovered that systemic hypoxia—low oxygen in the body, common in severe illness—doesn't just affect neutrophils at the injury site. It also reprograms the bone marrow stem cells that produce them, creating a lasting change in how new neutrophils behave. This suggests that the body's oxygen-sensing machinery, metabolic processes, and the physical structure of DNA inside these cells all work together to lock in a pro-inflammatory state. If the researchers succeed in mapping exactly how oxygen sensing, metabolism, and chromatin accessibility reprogram neutrophil responses, they could identify new drug targets. The goal is to treat dysfunctional neutrophilic inflammation at its source—the bone marrow—rather than just dampening symptoms in the lungs. This is fundamental science with clear translational potential: a deeper understanding of how cells remember hypoxia could eventually lead to therapies for ARDS and other inflammatory diseases where current options are limited.

View original technical description
Neutrophils have adapted to function in injured and infected tissues where oxygen and metabolites are limited. A proportionate neutrophil response is essential for effective immunity, with dysregulated neutrophilic inflammation contributing to the pathogenesis of inflammatory disease states. In the lung, dysfunctional neutrophilic inflammation can result in the development of acute respiratory distress syndrome, with the associated systemic hypoxia contributing to tissue hypoxia. My group has observed that not only does local hypoxia in the inflamed environment alter neutrophil behaviour, but also that systemic hypoxia can shape neutrophil responses with consequence for inflammation outcomes. We have emerging evidence that despite a short half- life, some of these changes in neutrophil physiology are long-lasting. This has led me to propose that systemic hypoxia drives central (bone marrow) epigenetic changes within neutrophil progenitors which are inherited by newly differentiated neutrophils and sustained long after the initial exposure. I further propose this central reprogramming can be informed by local cues following an inflammatory insult, with consequence for tissue effector functions and inflammation outcomes. The key goal of this proposal is to understand how activation of oxygen sensing pathways, metabolic processes and chromatin accessibility reprogram neutrophil responses and identify new targets to treat dysfunctional neutrophilic inflammation.

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Researchers

Sarah Walmsley (EPMC Awardee)

Related Research

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The role of hypoxia in determining the cellular outcomes of pulmonary infection and its importance in the pathogenesis of COPD
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Original classification

Discovery Award

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