Active Lungs & Breathing Cells, Biochemistry & Physiology

Investigating the impact of oxygen on neutrophil biomechanics: targeting a new mechanism in acute lung injury

In plain English

AI plain-English summary

Neutrophils—the immune system’s first responders—stiffen and get trapped in the lung’s tiny blood vessels when oxygen levels drop or spike, and this project aims to understand why. This matters because in acute respiratory distress syndrome (ARDS), patients often experience both low oxygen from damaged lungs and high oxygen from supplemental therapy. Stiff neutrophils can’t squeeze through the lung’s capillary network, leading to blockages, tissue damage, and worsening injury. The researcher has already shown that oxygen availability rapidly changes neutrophil flexibility: at venous oxygen levels, they are softest and pass easily, but both low and high oxygen make them rigid and prone to releasing damaging neutrophil extracellular traps. If this work succeeds, it could identify new drug targets that keep neutrophils deformable under oxygen stress, preventing their entrapment and reducing lung damage in ARDS. This is fundamental science—understanding how oxygen directly controls a cell’s mechanical properties—but it could eventually lead to treatments that improve outcomes for patients on ventilators or extracorporeal membrane oxygenation, where oxygen extremes are unavoidable.

View original technical description
The remarkable capability of healthy neutrophils to deform as they traffic through narrow pulmonary capillaries ensures their rapid transit through the lung. During inflammation, cytoskeletal reorganization causes neutrophils to become less deformable (stiff), leading to entrapment in the lung microvasculature. Using Real-Time Deformability Cytometry (RT-DC), a novel microfluidic technique that measures cellular biomechanical profiles, I have shown that oxygen availability rapidly modulates the neutrophil cytoskeleton. At venous oxygen tension (5% O2), neutrophils are softest, aiding their transit through the extensive lung capillary network. During acute respiratory distress syndrome, patients experience systemic hypoxia (due to impaired gas transfer in inflamed lung) and hyperoxia (due to oxygen supplementation). In severe respiratory failure, patients receiving extracorporeal membrane oxygenation are exposed to further extremes of pathological hypoxia/hyperoxia. I have shown that neutrophils in both low and high oxygen tensions display increased structural rigidity and generate more neutrophil extracellular traps. This may impede their transit through the lung and increase capacity to cause lung tissue/vascular damage. The key goal of this proposal is to understand how oxygen regulates neutrophil biomechanics to promote lung injury and identify novel targets that mediate oxygen-dependent behaviour, aiming to prevent neutrophil sequestration in the lung and mitigate acute lung injury.

View the original record at the funder ↗

Researchers

Katharine Lodge (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Regulation of tissue neutrophil function and survival by the interplay between oxygen and metabolite sensing pathways
Understanding hypoxic and inflammatory reprogramming of neutrophil responses to inform anti-inflammatory strategies
Role of hypoxia in driving local and systemic neutrophil-mediated inflammation in chronic obstructive pulmonary disease (COPD)
The role of hypoxia in determining the cellular outcomes of pulmonary infection and its importance in the pathogenesis of COPD
Defining neutrophil-endothelial interactions in acute lung injury.

Original classification

Early-Career Award

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.