压电1
免疫突触
细胞生物学
化学
NFAT公司
机械敏感通道
T细胞
细胞内
生物物理学
细胞
染色体易位
口腔1
细胞膜
机械转化
HEK 293细胞
电池极性
离子通道
刚度
信号转导
转录因子
整合素
作者
Renping Zhao,Jingnan Zhang,Sijia Zhang,Eva C. Schwarz,Aránzazu del Campo,Markus Hoth,Bin Qu
出处
期刊:Science Signaling
[American Association for the Advancement of Science]
日期:2026-01-27
卷期号:19 (922): eadt9566-eadt9566
被引量:3
标识
DOI:10.1126/scisignal.adt9566
摘要
T cell activation requires cell polarization and changes in gene expression. Target cell stiffness contributes to the activation of immune cells, and tumor cell softening is linked to cancer progression. We investigated how substrate stiffness influences T cell activation using functionalized, T cell–activating substrates of varying stiffness and softened target cells. Reorientation of the microtubule-organizing center (MTOC) toward the immunological synapse and nuclear translocation of the transcription factor NFAT1 were impaired on softer hydrogels or upon contact with softer target cells. The increase in intracellular Ca 2+ induced by target engagement also depended on stiffness and was reduced on soft substrates. Stiffness-dependent Ca 2+ signaling was crucial for both rapid (MTOC reorientation) and long-term (NFAT translocation) responses. Whereas MTOC reorientation depended on the mechanosensitive Ca 2+ -permeable channel PIEZO1, NFAT1 translocation depended on the Ca 2+ channel ORAI1. Our results demonstrate that target stiffness directly influences MTOC reorientation and NFAT1 translocation in T cells, and these two processes are governed by different plasma membrane Ca 2+ channels, indicating that these stiffness-regulated rapid and long-term responses can be decoupled. Our findings imply that tumor cell stiffness regulates T cell functionality and suggest that pathways regulated by PIEZO1 and ORAI1 might differentially control rapid and long-term responses to stiffness in other cell types.
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