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血小板形态改变:生物物理基础及生理后果。

The platelet shape change: biophysical basis and physiological consequences.

机构信息

a Laboratory of Optics and Dynamics of Biological Systems , Novosibirsk State University , Novosibirsk , Russia.

b Laboratory of Cytometry and Biokinetics , Voevodsky Institute of Chemical Kinetics and Combustion , Novosibirsk , Russia.

出版信息

Platelets. 2019;30(5):543-548. doi: 10.1080/09537104.2018.1514109. Epub 2018 Sep 25.

Abstract

The well-known platelet shape change is the universal hallmark of activation. This review uncovers the biophysics underlying this rapid and dramatic transformation. We aim to give a broad vision of the interplay between different cytoskeletal subsystems, which is based on physical considerations and recent advances in mathematics and computational biology. These novel findings lead to the understanding that the ring of microtubules counterbalances cortical tension in the resting platelet, making it a "mechanically charged" system. Platelet activation breaks the balance via several mechanisms, triggering rapid ring buckling and cell rounding. Based on the review of known data concerning the relations between platelet shape and function, we hypothesize that disk-to-sphere transformation facilitates platelet adhesion under flow. Conclusions of the paper may be useful for the development of novel, cytoskeletal-based strategies of antiplatelet therapy.

摘要

众所周知的血小板形状变化是激活的普遍标志。这篇综述揭示了这种快速而剧烈的转变背后的生物物理学原理。我们旨在基于物理考虑和数学和计算生物学的最新进展,对不同细胞骨架子系统之间的相互作用给出一个广泛的视角。这些新的发现导致了这样的理解,即微管环平衡了静止血小板中的皮质张力,使其成为一个“机械带电”的系统。血小板激活通过几种机制打破平衡,引发快速的环弯曲和细胞变圆。基于对血小板形状和功能之间关系的已知数据的综述,我们假设盘状到球状的转变有助于血小板在流动下的黏附。本文的结论可能对基于细胞骨架的新型抗血小板治疗策略的发展有用。

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