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剪切诱导红细胞释放三磷酸腺苷的动力学

Dynamics of shear-induced ATP release from red blood cells.

作者信息

Wan Jiandi, Ristenpart William D, Stone Howard A

机构信息

School of Engineering and Applied Sciences, Harvard University, 29 Oxford Street, Cambridge, MA 02138, USA.

出版信息

Proc Natl Acad Sci U S A. 2008 Oct 28;105(43):16432-7. doi: 10.1073/pnas.0805779105. Epub 2008 Oct 15.

Abstract

Adenosine triphosphate (ATP) is a regulatory molecule for many cell functions, both for intracellular and, perhaps less well known, extracellular functions. An important example of the latter involves red blood cells (RBCs), which help regulate blood pressure by releasing ATP as a vasodilatory signaling molecule in response to the increased shear stress inside arterial constrictions. Although shear-induced ATP release has been observed widely and is believed to be triggered by deformation of the cell membrane, the underlying mechanosensing mechanism inside RBCs is still controversial. Here, we use an in vitro microfluidic approach to investigate the dynamics of shear-induced ATP release from human RBCs with millisecond resolution. We demonstrate that there is a sizable delay time between the onset of increased shear stress and the release of ATP. This response time decreases with shear stress, but surprisingly does not depend significantly on membrane rigidity. Furthermore, we show that even though the RBCs deform significantly in short constrictions (duration of increased stress <3 ms), no measurable ATP is released. This critical timescale is commensurate with a characteristic membrane relaxation time determined from observations of the cell deformation by using high-speed video. Taken together our results suggest a model wherein the retraction of the spectrin-actin cytoskeleton network triggers the mechanosensitive ATP release and a shear-dependent membrane viscosity controls the rate of release.

摘要

三磷酸腺苷(ATP)是一种调节多种细胞功能的分子,包括细胞内功能,或许细胞外功能相对不那么为人所知。后者的一个重要例子涉及红细胞(RBC),红细胞通过在动脉狭窄处内部剪切应力增加时释放ATP作为血管舒张信号分子来帮助调节血压。尽管剪切诱导的ATP释放已被广泛观察到,并且被认为是由细胞膜变形触发的,但红细胞内部潜在的机械传感机制仍存在争议。在这里,我们使用体外微流控方法以毫秒分辨率研究剪切诱导的人红细胞ATP释放动力学。我们证明,在剪切应力增加开始和ATP释放之间存在相当大的延迟时间。这个响应时间随剪切应力减小,但令人惊讶的是,它并不显著依赖于膜的刚性。此外,我们表明,即使红细胞在短狭窄处(应力增加持续时间<3毫秒)发生显著变形,也没有可测量的ATP释放。这个关键时间尺度与通过高速视频观察细胞变形确定的特征膜松弛时间相当。综合我们的结果表明了一个模型,其中血影蛋白 - 肌动蛋白细胞骨架网络的回缩触发机械敏感的ATP释放,并且剪切依赖的膜粘度控制释放速率。

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