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Multimodal stimulation screens reveal unique and shared genes limiting T cell fitness.

Chun-Pu Lin ,
Pierre L Levy ,
Astrid Alflen ,
Georgi Apriamashvili ,
Maarten A Ligtenberg ,
David W Vredevoogd ,
Onno B Bleijerveld ,
Ferhat Alkan ,
Yuval Malka ,
Liesbeth Hoekman ,
Ettai Markovits ,
Austin George ,
Joleen J H Traets ,
Oscar Krijgsman ,
Alex van Vliet ,
Joanna Poźniak ,
Carlos Ariel Pulido-Vicuña ,
Beaunelle de Bruijn ,
Susan E van Hal-van Veen ,
Julia Boshuizen ,
Pim W van der Helm ,
Judit Díaz-Gómez ,
Hamdy Warda ,
Leonie M Behrens ,
Paula Mardesic ,
Bilal Dehni ,
Nils L Visser ,
Jean-Christophe Marine ,
Gal Markel ,
William J Faller ,
Maarten Altelaar ,
Reuven Agami ,
Michal J Besser ,
Daniel S Peeper

Abstract

Genes limiting T cell antitumor activity may serve as therapeutic targets. It has not been systematically studied whether there are regulators that uniquely or broadly contribute to T cell fitness. We perform genome-scale CRISPR-Cas9 knockout screens in primary CD8 T cells to uncover genes negatively impacting fitness upon three modes of stimulation: (1) intense, triggering activation-induced cell death (AICD); (2) acute, triggering expansion; (3) chronic, causing dysfunction. Besides established regulators, we uncover genes controlling T cell fitness either specifically or commonly upon differential stimulation. Dap5 ablation, ranking highly in all three screens, increases translation while enhancing tumor killing. Loss of Icam1-mediated homotypic T cell clustering amplifies cell expansion and effector functions after both acute and intense stimulation. Lastly, Ctbp1 inactivation induces functional T cell persistence exclusively upon chronic stimulation. Our results functionally annotate fitness regulators based on their unique or shared contribution to traits limiting T cell antitumor activity.

More about this publication

Cancer cell

Volume 42
Issue nr. 4
Pages 623-645.e10
Publication date 08-04-2024

Full text links

Publisher website (DOI) 10.1016/j.ccell.2024.02.016
Europe PubMed Central 38490212
Pubmed 38490212

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