Department of Biomedical Engineering, University of California Irvine, Irvine, USA.
The Edwards Lifesciences Center for Advanced Cardiovascular Technology, University of California Irvine, Irvine, USA.
Nat Commun. 2021 May 31;12(1):3256. doi: 10.1038/s41467-021-23482-5.
Macrophages perform diverse functions within tissues during immune responses to pathogens and injury, but molecular mechanisms by which physical properties of the tissue regulate macrophage behavior are less well understood. Here, we examine the role of the mechanically activated cation channel Piezo1 in macrophage polarization and sensing of microenvironmental stiffness. We show that macrophages lacking Piezo1 exhibit reduced inflammation and enhanced wound healing responses. Additionally, macrophages expressing the transgenic Ca reporter, Salsa6f, reveal that Ca influx is dependent on Piezo1, modulated by soluble signals, and enhanced on stiff substrates. Furthermore, stiffness-dependent changes in macrophage function, both in vitro and in response to subcutaneous implantation of biomaterials in vivo, require Piezo1. Finally, we show that positive feedback between Piezo1 and actin drives macrophage activation. Together, our studies reveal that Piezo1 is a mechanosensor of stiffness in macrophages, and that its activity modulates polarization responses.
巨噬细胞在免疫反应和组织损伤过程中执行多种功能,但对于组织的物理性质如何调节巨噬细胞行为的分子机制还了解甚少。在这里,我们研究了机械激活阳离子通道 Piezo1 在巨噬细胞极化和感知微环境硬度中的作用。结果表明,缺乏 Piezo1 的巨噬细胞表现出炎症反应减弱和伤口愈合反应增强。此外,表达转基因 Ca 报告基因 Salsa6f 的巨噬细胞表明,Ca 内流依赖于 Piezo1,受可溶性信号调节,并在硬基底上增强。此外,无论是在体外还是在体内生物材料皮下植入后的反应中,机械依赖的巨噬细胞功能变化都需要 Piezo1。最后,我们发现 Piezo1 和肌动蛋白之间的正反馈驱动巨噬细胞的激活。总之,我们的研究揭示了 Piezo1 是巨噬细胞硬度的机械感受器,其活性调节极化反应。