Remote Force Modulation of the T-Cell Receptor Reveals an NFAT-Threshold for CD4+ T-Cell Activation

IF 4.5 3区 医学 Q2 IMMUNOLOGY
Joseph Clarke, Jeremy Pike, David Bending, Dylan Owen, David C. Wraith, Alicia J. El Haj
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引用次数: 0

Abstract

Mechano-modulation of cell surface proteins to influence cell activation has been shown as a promising new advanced therapy for regenerative medicine applications. These strategies rely on the manipulation of mechanosensitive cell surface receptors to initiate intracellular signal transduction. The cell surface receptor of T lymphocytes (TCR), which recognises peptide-MHC molecules central to driving the adaptive immune response, has recently been suggested to be mechano-responsive. Despite this advance, little is known as to whether the TCR can be mechanically modulated to achieve TCR signalling and subsequent T-cell activation, and whether these characteristics can be exploited for immunotherapies. Here, we describe a magnetic particle-based platform for mechanical modulation of the TCR and outline how this platform can be utilised to achieve CD4+ T-cell activation. We demonstrate that mechanical manipulation of the TCR induces cell surface clustering of the TCR and downstream TCR signalling, leading to eventual TCR downregulation and T-cell activation. We investigate the temporal relationship between mechanical modulation of the TCR and subsequent T-cell activation, thereby identifying that accumulation of signalling events within the NFAT pathway is required to reach the threshold required for CD4+ T-cell activation, outlining an axis which controls the CD4+ T-cell response to external mechanical cues. These findings identify how CD4+ T cells can modulate their function in response to such cues while also outlining a remote-magnetic particle-based platform that may be used for the control of T-cell responses.

Abstract Image

t细胞受体的远程力调节揭示了CD4+ t细胞激活的nfat阈值
机械调节细胞表面蛋白以影响细胞活化已被证明是一种有前景的再生医学新先进疗法。这些策略依赖于机械敏感细胞表面受体的操纵来启动细胞内信号转导。T淋巴细胞的细胞表面受体(TCR)识别驱动适应性免疫反应的肽- mhc分子,最近被认为是机械反应性的。尽管取得了这一进展,但对于TCR是否可以通过机械调节来实现TCR信号传导和随后的t细胞激活,以及这些特征是否可以用于免疫治疗,人们知之甚少。在这里,我们描述了一种基于磁颗粒的TCR机械调制平台,并概述了如何利用该平台实现CD4+ t细胞激活。我们证明,机械操纵TCR诱导细胞表面聚集TCR和下游TCR信号,最终导致TCR下调和t细胞活化。我们研究了TCR的机械调节与随后的t细胞激活之间的时间关系,从而确定了NFAT途径中信号事件的积累需要达到CD4+ t细胞激活所需的阈值,并概述了控制CD4+ t细胞对外部机械信号反应的轴。这些发现确定了CD4+ T细胞如何根据这些线索调节其功能,同时也概述了一种可用于控制T细胞反应的基于远程磁颗粒的平台。
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来源期刊
CiteScore
8.30
自引率
3.70%
发文量
224
审稿时长
2 months
期刊介绍: The European Journal of Immunology (EJI) is an official journal of EFIS. Established in 1971, EJI continues to serve the needs of the global immunology community covering basic, translational and clinical research, ranging from adaptive and innate immunity through to vaccines and immunotherapy, cancer, autoimmunity, allergy and more. Mechanistic insights and thought-provoking immunological findings are of interest, as are studies using the latest omics technologies. We offer fast track review for competitive situations, including recently scooped papers, format free submission, transparent and fair peer review and more as detailed in our policies.
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