Active Infection & Immunity Lungs & Breathing

'Mechanisms of impaired neutrophil phagosome maturation and its impact on invasive bacterial infections

In plain English

AI plain-English summary

Patients in intensive care have neutrophils—the immune cells that eat and kill bacteria—that fail to finish the job, leaving them vulnerable to deadly secondary infections. This project aims to pinpoint why. The problem is urgent: secondary infections are a major complication of ICU stays, raising death rates and prolonging hospitalisation. Previous work showed that a molecule called C5a, produced in large amounts after severe injury or infection, disrupts how neutrophils kill bacteria after swallowing them. This project focuses on a signalling enzyme called VPS34, which may be a key link in that disruption. If the team can identify the exact mechanism, the payoff is a new class of therapies that restore neutrophil function without relying on antibiotics—a critical need as antibiotic resistance rises. The work uses high-resolution microscopy, genetic manipulation of neutrophil-like cells, and a newly developed mouse model lacking VPS34 in its neutrophils to test findings in a realistic pneumonia model. This is primarily fundamental science: understanding how a core immune process fails. But the detailed molecular map being generated will also serve as a screening pipeline for future drug targets, making subsequent translational studies faster and cheaper.

View original technical description
Patients admitted to intensive care units (ICU) are at high risk of developing secondary infections, which are infections which are not present on admission but develop as a complication of ICU therapy. These secondary infections place a major burden on the patient, increasing the risk of death and prolonging their stay in intensive care. I have shown that impairment of the body's immune cell defences is a major risk for the development of these infections. One of the most important immune cells involved in the fight against microbes is the neutrophil, and my previous work has demonstrated that critically ill patients have neutrophils which fail to eat ('phagocytose') bacteria. More recently I have shown that the killing mechanisms that are activated once the bacteria are eaten, so called 'phagosomal maturation', are also impaired in neutrophils from critically ill patients. This defect in bacterial killing is driven by a molecule produced by the body in large amounts in response to insults such as severe infections and major injury (called C5a). Using tools I have developed to profile and quantify the signalling/communication molecules that neutrophils use to respond to invading bacteria, and to evaluate the cells' anti-bacterial functions in real time, I have identified a number of potential ways in which C5a may impair these neutrophil functions. The aim of this project is to examine these signalling/communication molecules to identify the mechanisms by which they work. The ultimate aim is to identify therapies to restore neutrophil function and fight infections without antibiotics. My particular focus, arising from my previous work, is on a signalling enzyme called VPS34. I will use a range of techniques, including high resolution cellular microscopy and mapping of protein distribution across neutrophils to examine how C5a and blocking VPS34 alter the distribution of proteins. I will use this information to understand how these lead to impaired bacterial killing by these cells. Human neutrophils are too short-lived to be genetically altered, but I have techniques which allow genetic alteration of longer-lived neutrophil-like cells which will allow further investigation of the role of key signalling/communication mediators in bacterial killing. I have recently developed a mouse which has no VPS34 in its neutrophils that I will use to examine the role played by this enzyme in a relevant disease model, namely bacterial lung infection (pneumonia). This is an important step in translating the findings from isolated cells in a dish into the effects into living creatures, and hence ultimately into patients. The data I have generated profiling the signalling molecule response to bacteria in neutrophils is very detailed, and whilst this project focuses on one particular pathway, there are multiple further pathways to be identified and explored. The final part of this project will explore this data set in greater detail to identify pathways for future investigation. This work will build on collaborations I have established within the University of Cambridge, allowing me access to cutting edge techniques and expertise. This work will have a number of important outputs. First, it will provide greater knowledge of the mechanisms which lead to the defect I have identified in patient neutrophils, identifying potential targets for new therapies to treat and prevent secondary infections. Second it will equip me with the skills and knowledge required to investigate other functions in this key immune cell, and which will also be of use in other cell types. It will create a platform for the identification of candidate targets, and a pipeline for screening these targets. The most promising ones can then be taken into animal models and human experimental medicine. This maximises the chances of successful studies in an efficient and cost-effective manner.

View the original record at the funder ↗

Researchers

Andrew Conway Morris (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

A systems based approach to studying neutrophil gene expression
Optimising Innate Host Defence to Combat Antimicrobial Resistance
Characterising the Physiological Role, Function and Structure of the Inhibitory LILRB3 Receptor on Neutrophils using a Novel Bacterial Ligand
Establish new model systems to understand human neutrophil biology
Neutrophil exacerbation of T cell dysfunction in autoimmunity

Original classification

Fellowship

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