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早期,KCa3.1发生的一种新型精氨酸甲基化可减轻随后的T细胞耗竭。

An early, novel arginine methylation of KCa3.1 attenuates subsequent T cell exhaustion.

作者信息

Sharma Piyush, Guo Ao, Poudel Suresh, Boada-Romero Emilio, Verbist Katherine C, Palacios Gustavo, Immadisetty Kalyan, Chen Mark J, Haydar Dalia, Mishra Ashutosh, Peng Junmin, Babu M Madan, Krenciute Giedre, Glazer Evan S, Green Douglas R

出版信息

bioRxiv. 2024 Nov 20:2024.05.09.593421. doi: 10.1101/2024.05.09.593421.

DOI:10.1101/2024.05.09.593421
PMID:38798680
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11118966/
Abstract

T cell receptor (TCR) engagement initiates the activation process, and this signaling event is regulated in multifaceted ways. Nutrient availability in the immediate niche is one such mode of regulation . Here, we investigated how the availability of an essential amino acid methionine (Met) and TCR signaling might interplay in the earliest events of T cell activation to affect subsequent T cell fate and function. We found that limiting Met during only the initial 30 minutes of CD8 T cell activation increased Ca influx, Ca -mediated NFAT1 ( ) activation, NFAT1 promoter occupancy, and T cell exhaustion. We identified changes in the protein arginine methylome during the initial 30 min of TCR engagement and discovered a novel arginine methylation of a Ca -activated potassium transporter, KCa3.1, which regulates Ca -mediated NFAT1 signaling to ensure optimal activation. Ablation of arginine methylation in KCa3.1 led to increased NFAT1 activation, rendering T cells dysfunctional in murine tumour and infection models. Furthermore, acute Met supplementation at early stages reduced nuclear NFAT1 in tumour-infiltrating T cells and augmented their anti-tumour activity. Our findings identify a metabolic event occurring early after T cell activation that influences the subsequent fate of the cell.

摘要

T细胞受体(TCR)的结合启动了激活过程,并且这一信号事件受到多方面的调控。紧邻微环境中的营养物质可用性就是其中一种调控方式。在此,我们研究了必需氨基酸甲硫氨酸(Met)的可用性与TCR信号传导在T细胞激活的早期事件中如何相互作用,从而影响后续T细胞的命运和功能。我们发现,仅在CD8⁺ T细胞激活的最初30分钟内限制甲硫氨酸会增加钙离子内流、钙离子介导的活化T细胞核因子1(NFAT1)激活、NFAT1启动子占据以及T细胞耗竭。我们确定了TCR结合最初30分钟内蛋白质精氨酸甲基化组的变化,并发现了一种钙离子激活的钾离子转运体KCa3.1的新型精氨酸甲基化,它调节钙离子介导的NFAT1信号传导以确保最佳激活。KCa3.1中精氨酸甲基化的缺失导致NFAT1激活增加,使T细胞在小鼠肿瘤和感染模型中功能失调。此外,在早期阶段急性补充甲硫氨酸可减少肿瘤浸润T细胞中的核NFAT1,并增强其抗肿瘤活性。我们的研究结果确定了T细胞激活后早期发生的一种代谢事件,该事件会影响细胞的后续命运。

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