高剪切力下红细胞穿过机械心脏瓣膜缝隙的动力学。

IF 3.2 3区 生物学 Q2 BIOPHYSICS Biophysical journal Pub Date : 2024-09-26 DOI:10.1016/j.bpj.2024.09.027
Kuilin Meng, Haosheng Chen, Yunfan Pan, Yongjian Li
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引用次数: 0

摘要

溶血(包括亚临床溶血)是机械心脏瓣膜(MHV)潜在的严重并发症,会导致红细胞寿命缩短和溶血性贫血。严重溶血通常与结构退化和反流有关。然而,MHV 狭窄漏缝中的剪切应力远低于导致溶血的剪切应力阈值,其机制在很大程度上仍不清楚。本研究通过建立体外微流体装置和粗粒度分子动力学(CGMD)模型,同时考虑流体和结构效应,研究了高剪切速率下细胞大小缝隙中红细胞的溶血机制。微流体实验和计算模拟揭示了在不同剪切速率和缝隙大小条件下,RBC穿过MHV微尺度缝隙的六种不同动态状态。结果表明,RBC 的动态状态不仅受流体力的影响,而且在很大程度上受狭缝壁压缩力的影响。细胞膜势能的变化显示了细胞膜在穿越过程中的拉伸、变形和破裂,对应于六种动态状态。水颗粒和狭缝壁对细胞膜施加的最大力直接决定了细胞膜的破裂,是一个关键的决定因素。这一分析有助于了解狭缝壁对膜破裂的贡献,并确定导致膜破裂的阈值力。揭示了穿越微尺度狭缝的溶血机制,从而有效解释了溶血和亚临床溶血的发生。
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The dynamics of red blood cells traversing slits of mechanical heart valves under high shear.

Hemolysis, including subclinical hemolysis, is a potentially severe complications of mechanical heart valves (MHVs), which leads to shortened red blood cell (RBC) lifespan and hemolytic anemia. Serious hemolysis is usually associated with structural deterioration and regurgitation. However, the shear stress in MHVs' narrow leakage slits is much lower than the shear stress threshold causing hemolysis and the mechanisms in this context remain largely unclear. This study investigated the hemolysis mechanism of RBCs in cell-size slits under high shear rates by establishing in vitro microfluidic devices and a coarse-grained molecular dynamics (CGMD) model, considering both fluid and structural effects simultaneously. Microfluidic experiments and computational simulation revealed six distinct dynamic states of RBC traversal through MHVs' microscale slits under various shear rates and slit sizes. It elucidated that RBC dynamic states were influenced by not only by fluid forces but significantly by the compressive force of slit walls. The variation of the potential energy of the cell membrane indicated its stretching, deformation, and rupture during traversal, corresponding to the six dynamic states. The maximum forces exerted on membrane by water particles and slit walls directly determined membrane rupture, serving as a critical determinant. This analysis helps in understanding the contribution of the slit walls to membrane rupture and identifying the threshold force that leads to membrane rupture. The hemolysis mechanism of traversing microscale slits is revealed to effectively explain the occurrences of hemolysis and subclinical hemolysis.

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来源期刊
Biophysical journal
Biophysical journal 生物-生物物理
CiteScore
6.10
自引率
5.90%
发文量
3090
审稿时长
2 months
期刊介绍: BJ publishes original articles, letters, and perspectives on important problems in modern biophysics. The papers should be written so as to be of interest to a broad community of biophysicists. BJ welcomes experimental studies that employ quantitative physical approaches for the study of biological systems, including or spanning scales from molecule to whole organism. Experimental studies of a purely descriptive or phenomenological nature, with no theoretical or mechanistic underpinning, are not appropriate for publication in BJ. Theoretical studies should offer new insights into the understanding ofexperimental results or suggest new experimentally testable hypotheses. Articles reporting significant methodological or technological advances, which have potential to open new areas of biophysical investigation, are also suitable for publication in BJ. Papers describing improvements in accuracy or speed of existing methods or extra detail within methods described previously are not suitable for BJ.
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