Inflammation-fighting immune cells navigate to lung tissue using a molecular "postcode" system that the researchers have identified in fruit flies and are now testing in mice and human blood samples. Inflammation is the body's defence against injury and infection, but in lung diseases like acute respiratory distress syndrome, idiopathic pulmonary fibrosis, and COVID-19, this response becomes disordered and causes additional tissue damage. Over 1 billion people worldwide suffer from respiratory diseases, yet most have no effective drug therapy. The fundamental gap is that scientists do not fully understand the molecular machinery that guides inflammatory cells to sites of injury, or how macrophages reprogram themselves after clearing dead cells to complete tissue repair. If this research succeeds, it could reveal new drug targets that limit the recruitment of damaging inflammatory cells to the lungs and promote inflammation resolution. The work is primarily fundamental science—using fruit flies for real-time observation and genetic screening, then validating findings in mouse models and human patient samples—but it directly addresses a critical need for therapies in debilitating, currently untreatable lung conditions.
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Inflammation is the body's response to injury, infection or disease. While some conditions (e.g., pneumonia and acute asthma) cause dramatic inflammation, they have the capacity to resolve completely with no residual damage to surrounding tissues. However, in many cases inflammation can become disordered or dysregulated which causes additional damage to tissues of the body. In fact, dysregulated inflammation is responsible for a significant burden of global disease and ill health, especially lung diseases such as acute respiratory distress syndrome, idiopathic pulmonary fibrosis, chronic bronchitis and COVID-19. Over 1 billion people suffer from acute or chronic respiratory diseases, and despite this huge burden of illness, loss of economic productivity and, in many cases, premature death, there is limited or no effective drug therapy for most of these conditions. With MRC support over the last 20 years, we have studied how inflammation resolves and how these processes become dysregulated in chronic inflammatory conditions with the goal of generating new therapies for treating these diseases. In this exciting project, we have two main aims. The first is to understand the machinery that inflammatory cells use to navigate from the bloodstream to the site of inflammation. The second is to determine how ingestion of dead cells generated during disease reprograms macrophages to drive inflammation resolution and complete the tissue repair process. If we can determine the molecules involved in these processes, these could be targeted therapeutically to limit recruitment of inflammatory cells and promote inflammation resolution. To achieve this, we have used one of the simplest model organisms, the common fruit fly, to understand the 'postcode' system used by inflammatory cells for navigation. A major benefit of using the fly as a model system is that it enables us to watch this process of blood cell recruitment in real time within a living animal and rapidly test for new inflammation targets through genetic screening experiments, something not possible in mammals. A 'breakthrough' came when we identified new components of the machinery that scavenger white blood cells (neutrophils and macrophages) use to navigate to inflammatory wounds and for the removal of unwanted dead cells. In this programme of work, we will investigate these novel pathways and use clinically relevant models of human lung disease (in mice) to determine if these pathways control inflammatory cell recruitment in mammals. Complementary analysis of white blood cells isolated from healthy volunteers and from patients with lung diseases will allow us to examine these pathways in human-specific disease contexts. A crucial part of inflammation resolution is the clearance of the inflammatory cells that have been recruited to combat the threat/infection. This process is highly dependent on scavenger immune cells (macrophages) which eat and destroy unwanted inflammatory cells after they have undergone a form of 'silent suicide'. Ingestion of dead inflammatory cells is thought to program macrophages to complete the tissue repair process. However, the molecular pathways that instruct macrophages to perform these functions are very poorly understood. Understanding these pathways could allow us to manipulate them to re-program macrophages in chronic inflammation. So, again, we will use the powerful genetics of the fly to investigate these processes in depth and at scale, then use mouse models to test the candidates we have identified before examining them using white blood cells from individuals with lung disease. Our unique cross-species collaborative approach brings together a team of outstanding scientists that offer an opportunity to understand, at an unprecedented level, the complex machinery controlling inflammation. This information will be critical to design novel therapies for these debilitating and untreatable diseases in the foreseeable future.
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