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天然杀伤细胞的纳米级机械感应是由抗原功能化纳米线揭示的。

Nanoscale Mechanosensing of Natural Killer Cells is Revealed by Antigen-Functionalized Nanowires.

机构信息

Department of Materials Engineering, Ben-Gurion University of the Negev, Beer Sheva, 84105, Israel.

Ilse Katz Institute for Nanoscale Science & Technology, Ben-Gurion University of the Negev, Beer Sheva, 84105, Israel.

出版信息

Adv Mater. 2019 Jan;31(4):e1805954. doi: 10.1002/adma.201805954. Epub 2018 Nov 28.

Abstract

Cells sense their environment by transducing mechanical stimuli into biochemical signals. Commonly used tools to study cell mechanosensing provide limited spatial and force resolution. Here, a novel nanowire-based platform for monitoring cell forces is reported. Nanowires are functionalized with ligands for cell immunoreceptors, and they are used to explore the mechanosensitivity of natural killer (NK) cells. In particular, it is found that NK cells apply centripetal forces to nanowires, and that the nanowires stimulate cell contraction. Based on the nanowire deformation, it is calculated that cells apply forces of down to 10 pN, which is the smallest value demonstrated so far by microstructured platforms for cell spreading. Furthermore, the roles of: i) nanowire topography and ii) activating ligands in the cell immune function are studied and it is found that only their combination produces enhanced population of activated NK cells. Thus, a mechanosensing mechanism of NK cells is proposed, by which they integrate biochemical and mechanical stimuli into a decision-making machinery analogous to the AND logic gate, whose output is the immune activation. This work reveals unprecedented mechanical aspects of NK cell immune function and introduces an innovative nanomaterial for studying cellular mechanics with unparalleled spatial and mechanical resolution.

摘要

细胞通过将机械刺激转化为生化信号来感知其环境。常用于研究细胞机械感受的常用工具提供了有限的空间和力分辨率。在这里,报道了一种用于监测细胞力的新型基于纳米线的平台。纳米线用细胞免疫受体的配体功能化,并用于探索自然杀伤 (NK) 细胞的机械敏感性。特别是,发现 NK 细胞向纳米线施加向心作用力,并且纳米线刺激细胞收缩。基于纳米线的变形,可以计算出细胞施加的力低至 10 pN,这是迄今为止通过用于细胞扩展的微结构平台证明的最小值。此外,研究了纳米线的拓扑结构和激活配体在细胞免疫功能中的作用,发现只有它们的组合才能产生更多的活化 NK 细胞。因此,提出了 NK 细胞的机械感受机制,通过该机制,它们将生化和机械刺激整合到类似于与非门的决策机制中,其输出是免疫激活。这项工作揭示了 NK 细胞免疫功能的前所未有的机械方面,并引入了一种创新的纳米材料,用于研究具有无与伦比的空间和机械分辨率的细胞力学。

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