压电1
化学
收缩(语法)
收缩性
血小板
血小板活化
生物物理学
全血
机械敏感通道
内科学
医学
生物化学
生物
离子通道
受体
作者
Natalia G. Evtugina,Alina D. Peshkova,Alina I. Khabirova,Izabella A. Andrianova,Shahnoza Abdullayeva,Francis Ayombil,Taisia Shepeliuk,Ekaterina L. Grishchuk,Ф. И. Атауллаханов,Rustem I. Litvinov,John W. Weisel
标识
DOI:10.1016/j.jtha.2023.05.022
摘要
Background Piezo1 is a mechanosensitive cationic channel that boosts intracellular [Ca2+]i. Compression of red blood cells (RBCs) during platelet-driven contraction of blood clots may cause the activation of Piezo1. Objectives To establish relationships between Piezo1 activity and blood clot contraction. Methods Effects of a Piezo1 agonist, Yoda1, and antagonist, GsMTx-4, on clot contraction in vitro were studied in human blood containing physiological [Ca2+]. Clot contraction was induced by exogenous thrombin. Activation of Piezo1 was assessed by Ca2+ influx in RBCs and with other functional and morphologic features. Results Piezo1 channels in compressed RBCs are activated naturally during blood clot contraction and induce an upsurge in the intracellular [Ca2+]i, followed by phosphatidylserine exposure. Adding the Piezo1 agonist Yoda1 to whole blood increased the extent of clot contraction due to Ca2+-dependent volumetric shrinkage of RBCs and increased platelet contractility due to their hyperactivation by the enhanced generation of endogenous thrombin on activated RBCs. Addition of rivaroxaban, the inhibitor of thrombin formation, or elimination of Ca2+ from the extracellular space abrogated the stimulating effect of Yoda1 on clot contraction. The Piezo1 antagonist, GsMTx-4, caused a decrease in the extent of clot contraction relative to the control both in whole blood and in platelet-rich plasma. Activated Piezo1 in compressed and deformed RBCs amplified the platelet contractility as a positive feedback mechanism during clot contraction. Conclusion The results obtained demonstrate that the Piezo1 channel expressed on RBCs comprises a mechanochemical modulator of blood clotting that may be considered a potential therapeutic target to correct hemostatic disorders.
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