Nanoscale mechanobiology of cell adhesions
- PMID: 28754443
- DOI: 10.1016/j.semcdb.2017.07.029
Nanoscale mechanobiology of cell adhesions
Abstract
Proper physiological functions of cells and tissues depend upon their abilities to sense, transduce, integrate, and generate mechanical and biochemical signals. Although such mechanobiological phenomena are widely observed, the molecular mechanisms driving these outcomes are still not fully understood. Cell adhesions formed by integrins and cadherins receptors are key structures that process diverse sources of signals to elicit complex mechanobiological responses. Since the nanoscale is the length scale at which molecules interact to relay force and information, the understanding of cell adhesions at the nanoscale level is important for grasping the inner logics of cellular decision making. Until recently, the study of the biological nanoscale has been restricted by available molecular and imaging tools. Fortunately, rapid technological advances have increasingly opened up the nanoscale realm to systematic investigations. In this review, we discuss current insights and key open questions regarding the nanoscale structure and function relationship of cell adhesions, focusing on recent progresses in characterizing their composition, spatial organization, and cytomechanical operation.
Keywords: Cadherin; Cell-cell adhesions; Cell-matrix adhesions; Integrin; Mechanotransduction; Nanoclusters; Nanoscale architecture; Super-resolution microscopy.
Copyright © 2017 Elsevier Ltd. All rights reserved.
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