Chen Yu-Chang, Tran Nghi M, Vining Kyle H
Department of Materials Science and Engineering, School of Engineering and Applied Science, University of Pennsylvania, Philadelphia, PA 19104, USA.
Department of Bioengineering, School of Engineering and Applied Science, University of Pennsylvania, Philadelphia, PA 19104, USA.
Adv Ther (Weinh). 2025 Jun 25. doi: 10.1002/adtp.202500067.
Immune cells experience a wide range of modes and magnitudes of mechanical forces as they infiltrate tissues and physically interact with other cells. Biophysical forces influence cell phenotypes through mechanosensing of the cytoskeleton, cell adhesion, catch and slip bonds, and mechanically gated ion channels. As a result, different mechanical environments impact the function and expression of immune cell receptors, which subsequently affects local and systemic immune responses. Mechanical coupling of immune cell receptors can be exploited in immuno-engineering applications such as adoptive cell transfer and artificial antigen-presenting cells through biomaterial systems with tunable mechanical properties that regulate receptor expression and cell activation. This review covers immune cell receptors in the adaptive and innate immune system that respond to mechanical forces and their potential to be applied for advancing current immunotherapies.
免疫细胞在浸润组织并与其他细胞进行物理相互作用时,会经历多种模式和大小的机械力。生物物理力通过细胞骨架的机械传感、细胞粘附、捕获和滑动键以及机械门控离子通道影响细胞表型。因此,不同的机械环境会影响免疫细胞受体的功能和表达,进而影响局部和全身免疫反应。免疫细胞受体的机械偶联可用于免疫工程应用,如过继性细胞转移和人工抗原呈递细胞,通过具有可调机械性能的生物材料系统来调节受体表达和细胞激活。本综述涵盖了适应性和先天性免疫系统中对机械力作出反应的免疫细胞受体,以及它们在推进当前免疫疗法方面的应用潜力。