Completed Infection & Immunity Genetics & Molecular Biology

Drosophila as a model to study Immune Cell Signal Integration in vivo.

In plain English

AI plain-English summary

Immune cells in a fruit fly embryo must decide whether to chase a wound, eat a dying cell, or attack a bacterium—and they cannot do all three at once. This project asks how a single immune cell weighs competing signals in a living animal. Scientists know the molecular parts that detect damage, death, and infection, but they do not understand how a cell prioritises one cue over another when all arrive at once. Without that knowledge, it is impossible to design drugs that redirect immune cells away from sites where they cause harm—for example, in chronic inflammation or autoimmune disease—and toward sites where they are needed, such as infected wounds. The work is fundamental science. It uses the fruit fly *Drosophila* because its embryonic macrophages are transparent and accessible, allowing researchers to watch signal integration happen in real time. The team also wants to test whether exposure to one cue primes a cell to respond differently to a later cue—a form of innate immune memory. Past fundamental studies of fly immunity have revealed core mechanisms later found in humans, including the Toll receptor pathway. A deeper understanding of how immune cells make decisions *in vivo* could eventually inform therapies that steer human immune cells more precisely.

View original technical description
Immune cells live in a complex environment and are constantly bombarded by multiple and often competing signals including wound induced damage signals, apoptotic corpses, and bacteria at sites of infection. To respond efficiently to any one of these cues it is not sufficient for these cells to simply possess the molecular machinery that allows detection of that cue; rather they must integrate the different signals and decide whether to prioritise one over another. We know little about how immune cells achieve this signal integration in vivo but this is key information if we are to design therapeutics to manipulate the decisions made by immune cells such that we can withdraw them from places where they are causing damage and direct them to places where they are needed. Using Drosophila as a model system to study immune cell migration my lab has demonstrated that embryonic macrophages actively migrate towards wounds as well as towards bacteria and apoptotic corpses in vivo. The aim of this application for fellowship renewal is to study how signal integration is achieved within a macrophage in vivo. How do these cells detect the early inflammatory cues coming from a wound? How do the same cells detect and engulf apoptotic corpses and bacteria in vivo and how are these signals integrated with inflammatory damage signals? We also want to understand how exposure to a given cue can prime a cells ability to respond to a subsequent signal and how this innate immune memory is operat ing in vivo.

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Researchers

Will Wood (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Detecting Death and Damage in vivo; Using Drosophila to Understand Innate Immune Cell Priming
Molecular mechanisms retaining macrophages at sites of inflammation
Studying integration of apoptotic cell clearance and macrophage migration dynamically in vivo.
Find-me and eat-me: understanding how signals from dying cells control and subvert macrophage behaviour
Drosophila embryonic macrophages as a model system for studying migration and bacterial infection in real time.

Original classification

Senior Research Fellowship Basic Renewal

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