Galic Milos, Begemann Isabell, Viplav Abhiyan, Matis Maja
a Cells-In-Motion Cluster of Excellence (EXC1003 -CiM); University of Münster , Germany.
Bioarchitecture. 2014;4(4-5):164-8. doi: 10.1080/19490992.2015.1005524.
Force-regulation at cellular membranes relies on dynamic molecular platforms that integrate intra- and extracellular signals to control cell shape and function. To correctly respond to a continuously changing environment, activity of these platforms needs to be tightly controlled in space and time. Over the last few years, curvature-dependent mechano-chemical signal translation—a receptor-independent signaling mechanism where physical forces at the plasma membrane trigger nanoscale membrane deformations that are then translated into chemical signal transduction cascades—has emerged as a new signaling principle that cells use to regulate forces at the membrane. However, until recently, technical limitations have precluded studies of this force-induced curvature-dependent signaling at the physiological scale. Here, we comment on recent advancements that allow studying curvature-dependent signaling at membranes, and discuss processes where it may be involved in. Considering its general impact on cell function, a particular focus will be put on the curvature-dependence of feedback loops that control actin-based forces at cellular membranes.
细胞膜上的力调节依赖于动态分子平台,这些平台整合细胞内和细胞外信号以控制细胞形状和功能。为了正确响应不断变化的环境,这些平台的活性需要在空间和时间上受到严格控制。在过去几年中,曲率依赖性机械化学信号转导——一种不依赖受体的信号传导机制,其中质膜上的物理力触发纳米级膜变形,然后转化为化学信号转导级联反应——已成为细胞用于调节膜上力的一种新的信号传导原理。然而,直到最近,技术限制使得在生理尺度上研究这种力诱导的曲率依赖性信号传导成为不可能。在这里,我们评论了最近在研究膜上曲率依赖性信号传导方面取得的进展,并讨论了它可能涉及的过程。考虑到其对细胞功能的普遍影响,我们将特别关注控制细胞膜上基于肌动蛋白的力的反馈回路的曲率依赖性。