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使用光可控抗原受体定量检测 T 细胞信号网络中的持久性。

Quantifying persistence in the T-cell signaling network using an optically controllable antigen receptor.

机构信息

Molecular Immunity Unit, Department of Medicine, MRC-LMB, University of Cambridge, Cambridge, UK.

Division of Biomedical Sciences, Warwick Medical School, University of Warwick, Coventry, UK.

出版信息

Mol Syst Biol. 2021 May;17(5):e10091. doi: 10.15252/msb.202010091.

Abstract

T cells discriminate between healthy and infected cells with remarkable sensitivity when mounting an immune response, which is hypothesized to depend on T cells combining stimuli from multiple antigen-presenting cell interactions into a more potent response. To quantify the capacity for T cells to accomplish this, we have developed an antigen receptor that is optically tunable within cell conjugates, providing control over the duration, and intensity of intracellular T-cell signaling. We observe limited persistence within the T-cell intracellular network on disruption of receptor input, with signals dissipating entirely in ~15 min, and directly show sustained proximal receptor signaling is required to maintain gene transcription. T cells thus primarily accumulate the outputs of gene expression rather than integrate discrete intracellular signals. Engineering optical control in a clinically relevant chimeric antigen receptor (CAR), we show that this limited signal persistence can be exploited to increase CAR-T cell activation threefold using pulsatile stimulation. Our results are likely to apply more generally to the signaling dynamics of other cellular networks.

摘要

T 细胞在免疫反应中具有出色的敏感性,可以区分健康细胞和感染细胞,这被假设取决于 T 细胞将来自多个抗原呈递细胞相互作用的刺激组合成更有效的反应。为了量化 T 细胞完成此操作的能力,我们开发了一种抗原受体,该受体在细胞偶联物中具有光学可调性,从而可以控制细胞内 T 细胞信号传导的持续时间和强度。我们观察到,在破坏受体输入时,T 细胞细胞内网络中的信号持续时间有限,信号在大约 15 分钟内完全消散,并且直接显示持续的近端受体信号传导对于维持基因转录是必需的。因此,T 细胞主要积累基因表达的输出,而不是整合离散的细胞内信号。在临床上相关的嵌合抗原受体 (CAR) 中进行光学控制工程,我们表明可以利用这种有限的信号持续时间,通过脉冲刺激将 CAR-T 细胞的激活增加三倍。我们的结果可能更普遍地适用于其他细胞网络的信号动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c340/8120804/b0811896d797/MSB-17-e10091-g011.jpg

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