Active Infection & Immunity Lungs & Breathing

Spatiotemporal basis of adaptive immunity in the spleen

In plain English

AI plain-English summary

The spleen’s inner workings have remained largely invisible—until now. This project uses advanced imaging to watch immune cells move and interact inside a living, intact spleen for the first time. Most of what scientists know about how T cells get activated, find their targets, and leave to fight infection comes from studying lymph nodes. The spleen, the body’s largest immune organ, has been a black box because no one could see inside it without cutting it open. This gap matters because the spleen handles blood-borne pathogens—bacteria and viruses that travel through the bloodstream—differently from lymph nodes, which filter tissue fluid. If this research succeeds, it will map the spleen’s hidden architecture: the precise routes T cells take to enter its T-zones, the molecular signals that switch them on, and how they exit after becoming effector cells. This is fundamental science—there is no immediate clinical application. But understanding how the spleen orchestrates immunity could eventually inform vaccine design, improve treatments for blood infections like malaria, or explain why some immune therapies work better in certain organs. Past fundamental work on lymph node structure, for example, directly enabled modern cancer immunotherapies.

View original technical description
Adaptive immunity provides essential protection from infectious diseases. This system depends on the ability of lymphocytes to reach distinct compartments within secondary lymphoid organs (SLOs), where specialized cells mediate controlled activation, and where homeostatic survival and peripheral tolerance-promoting cues are presented. Whilst much progress has been made towards defining the mechanisms that regulate these events in lymph-nodes, relatively little is known about how they are orchestrated in the largest SLO in our body, the spleen. Progress in this area lagged largely due to challenges in developing the necessary imaging technology to explore dynamic behaviour of cells within live intact spleens. Our group pioneered cutting-edge imaging approaches that allow us to perform this analysis with high resolution for the first time. Here, we will use a combination of advanced imaging approaches to define the microanatomical structures and molecular mechanisms that facilitate T cell 1) access into splenic T-zones, 2) acquisition of initial activation signals, and 3) egress before/after differentiation into effector cells. These studies will not only resolve fundamental open questions in the field, but also provide a solid foundation for future works aiming to understand how the spleen orchestrates immune responses and how it can be modulated for therapeutic interventions.

View the original record at the funder ↗

Researchers

Tal Arnon (EPMC Awardee)

Related Research

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Functional compartmentalization of the T cell plasma membrane in the maturing immunological synapse
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Dendritic cell migration through pulmonary lymphatics: how and where?
Understanding the Emerging Role of the Spleen in the Disposition of Novel Precision Medicines
Targeting New Mechanisms In The Control Of Thymus Function To Restore Balanced T-cell Production

Original classification

Investigator Award in Science

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