Completed Cancer Infection & Immunity

T-cell regulation of CNS autoimmune disease.

In plain English

AI plain-English summary

The immune system’s own brakes are failing in multiple sclerosis, and this project aims to figure out exactly how two key molecules—CTLA-4 and IL-10—put those brakes back on. Multiple sclerosis (MS) is a chronic autoimmune disease where the body’s immune cells attack the protective coating around nerves in the brain and spinal cord. Current treatments dampen the entire immune system, leaving patients vulnerable to infections. This research targets a gap: we know that certain regulatory T cells (Tregs) can control the attack, but the molecular switches that turn these cells on and off remain poorly understood. The team has already shown that two distinct types of Tregs—one marked by the protein FoxP3, one without it—can suppress disease in mouse models of MS. They now want to dissect how CTLA-4 shapes the immune system’s T cell repertoire in the thymus and how IL-10-producing cells emerge from inflammatory Th1 cells. This is fundamental science. If successful, it will provide a molecular roadmap for designing therapies that selectively strengthen the body’s own regulatory cells, rather than bludgeoning the entire immune response. That could eventually lead to more precise treatments for MS and other autoimmune conditions, with fewer side effects.

View original technical description
We have shown that both FoxP3+ and FoxP3- regulatory T cells (Treg) can control autoimmune disease of the CNS in our models of multiple sclerosis (MS). Our aim is to focus on the two key molecules involved in their differentiation and function. CTLA-4-deficient Tg4 mice, expressing an encephalitogenic TCR, either develop accelerated spontaneous encephalomyelitis or are protected from disease depending on whether they are capable of endogenous TCR rearrangement. CTLA-4 balances CD28 costimulat ory signalling: in this programme we will define how CTLA-4 controls T cell repertoire selection in the thymus, the threshold for T cell activation and anergy in peripheral lymphoid tissues, and the generation of induced Treg cells. FoxP3-ve cells are the major source of IL-10 following peptide therapy in our models of multiple sclerosis. Peptide therapy induces a negative feedback loop mechanism limiting Th1 responses through IL-10. We aim to define how IL-10 secreting cells differentiate fr om Th1 cells. In vitro and in vivo models will be used to define cell signalling and epigenetic mechanisms involved in suppressing pro-inflammatory cytokines while activating IL-10 transcription.

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Researchers

David Wraith (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Probing regulatory T cells in multiple sclerosis brain
The role of T-bet in Foxp3+ T regulatory cell-mediated protection from autoimmune inflammation
Identification of mechanisms underpinning regulatory T cell involvement in disease.
Regulatory T cell-mediated suppression of cytotoxic T cells activated with ImmTACs
Foxp3(+) natural T-reg cell development in the thymus.

Original classification

Programme Grant

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