Feghhi Shirin, Sniadecki Nathan J
Department of Mechanical Engineering, University of Washington, Stevens Way, Box 352600, Seattle, WA 98195, USA.
Int J Mol Sci. 2011;12(12):9009-30. doi: 10.3390/ijms12129009. Epub 2011 Dec 7.
Coagulation involves a complex set of events that are important in maintaining hemostasis. Biochemical interactions are classically known to regulate the hemostatic process, but recent evidence has revealed that mechanical interactions between platelets and their surroundings can also play a substantial role. Investigations into platelet mechanobiology have been challenging however, due to the small dimensions of platelets and their glycoprotein receptors. Platelet researchers have recently turned to microfabricated devices to control these physical, nanometer-scale interactions with a higher degree of precision. These approaches have enabled exciting, new insights into the molecular and biomechanical factors that affect platelets in clot formation. In this review, we highlight the new tools used to understand platelet mechanobiology and the roles of adhesion, shear flow, and retraction forces in clot formation.
凝血涉及一系列复杂的事件,这些事件对于维持止血至关重要。传统上认为生化相互作用调节止血过程,但最近的证据表明血小板与其周围环境之间的机械相互作用也可发挥重要作用。然而,由于血小板及其糖蛋白受体尺寸较小,对血小板力学生物学的研究一直具有挑战性。血小板研究人员最近转向微制造设备,以更高的精度控制这些物理的、纳米级的相互作用。这些方法为影响血小板凝块形成的分子和生物力学因素带来了令人兴奋的新见解。在本综述中,我们重点介绍了用于理解血小板力学生物学的新工具以及粘附、剪切流和回缩力在凝块形成中的作用。