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纳米限域微绒毛改变基因表达并增强 T 细胞激活。

Nanoconfinement of microvilli alters gene expression and boosts T cell activation.

机构信息

Laboratory of Applied Mechanobiology, Department for Health Sciences and Technology, ETH Zürich, Zürich, 8093, Switzerland;

Laboratory of Applied Mechanobiology, Department for Health Sciences and Technology, ETH Zürich, Zürich, 8093, Switzerland.

出版信息

Proc Natl Acad Sci U S A. 2021 Oct 5;118(40). doi: 10.1073/pnas.2107535118.

Abstract

T cells sense and respond to their local environment at the nanoscale by forming small actin-rich protrusions, called microvilli, which play critical roles in signaling and antigen recognition, particularly at the interface with the antigen presenting cells. However, the mechanism by which microvilli contribute to cell signaling and activation is largely unknown. Here, we present a tunable engineered system that promotes microvilli formation and T cell signaling via physical stimuli. We discovered that nanoporous surfaces favored microvilli formation and markedly altered gene expression in T cells and promoted their activation. Mechanistically, confinement of microvilli inside of nanopores leads to size-dependent sorting of membrane-anchored proteins, specifically segregating CD45 phosphatases and T cell receptors (TCR) from the tip of the protrusions when microvilli are confined in 200-nm pores but not in 400-nm pores. Consequently, formation of TCR nanoclustered hotspots within 200-nm pores allows sustained and augmented signaling that prompts T cell activation even in the absence of TCR agonists. The synergistic combination of mechanical and biochemical signals on porous surfaces presents a straightforward strategy to investigate the role of microvilli in T cell signaling as well as to boost T cell activation and expansion for application in the growing field of adoptive immunotherapy.

摘要

T 细胞通过形成小的富含肌动蛋白的突起(称为微绒毛)来感知和响应其局部环境,这些突起在信号转导和抗原识别中发挥着关键作用,尤其是在与抗原呈递细胞的界面处。然而,微绒毛在细胞信号转导和激活中的作用机制在很大程度上尚不清楚。在这里,我们提出了一个可调节的工程系统,该系统通过物理刺激促进微绒毛的形成和 T 细胞信号转导。我们发现,纳米多孔表面有利于微绒毛的形成,并显著改变了 T 细胞中的基因表达,并促进了它们的激活。从机制上讲,当微绒毛被限制在 200nm 孔内时,会导致膜锚定蛋白的尺寸依赖性分选,具体而言是将 CD45 磷酸酶和 T 细胞受体(TCR)从突起的尖端隔离出来,而当微绒毛被限制在 400nm 孔内时则不会发生这种情况。因此,在 200nm 孔内形成 TCR 纳米簇热点可允许持续和增强的信号转导,即使在没有 TCR 激动剂的情况下也能促使 T 细胞激活。多孔表面上的机械和生化信号的协同组合为研究微绒毛在 T 细胞信号转导中的作用以及增强 T 细胞激活和扩增提供了一种简单的策略,这在不断发展的过继免疫治疗领域具有广阔的应用前景。

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