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Distinct control of T cell proliferation and effector function by partitioning of intracellular sulfur from cysteine.

bioRxiv : the preprint server for biology 2026

Kelly B, Cha M, Gremelspacher T, Martin JL, Andreis M, Carrizo GE, Gidley M, Stanczak MA, Apostolova P, Sanin DE, Majumdar A, Pearce EL

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Delineating how acquired nutrients are partitioned into different intracellular pathways, and how these various fates support distinct functions in T cells is limited.

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BibTeX ↓ RIS ↓
APA Kelly B, Cha M, et al. (2026). Distinct control of T cell proliferation and effector function by partitioning of intracellular sulfur from cysteine.. bioRxiv : the preprint server for biology. https://doi.org/10.64898/2026.01.27.702014
MLA Kelly B, et al.. "Distinct control of T cell proliferation and effector function by partitioning of intracellular sulfur from cysteine.." bioRxiv : the preprint server for biology, 2026.
PMID 41659672

Abstract

Delineating how acquired nutrients are partitioned into different intracellular pathways, and how these various fates support distinct functions in T cells is limited. We show that CD8 T cells acquire cysteine to serve both as a substrate for glutathione (GSH) production, which modulates effector functions, and to cede its sulfur for NFS1-dependent FeS-cluster synthesis, which supports proliferation. NFS1 deletion in activated CD8 T cells promotes exhaustion and dampens anti-cancer immunity, while blocking cysteine flux into GSH, or enforcing FeS metabolism, enhance tumor control. This role for disrupted FeS metabolism in T cell exhaustion is echoed in data from human HCC. Elucidating how different intracellular pathways use cysteine enables targeted control of cysteine flux to retain beneficial effects of cysteine while abolishing those that restrain function. We illustrate this concept for one metabolite, cysteine, but it is likely to apply to other metabolites relevant for immune cell function.

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