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亚致死机械创伤改变了红细胞的电化学特性并增加了其聚集。

Sublethal mechanical trauma alters the electrochemical properties and increases aggregation of erythrocytes.

机构信息

Biorheology Research Laboratory, Griffith University, Gold Coast, Australia; Menzies Health Institute Queensland, Griffith University, Gold Coast, Australia.

School of Engineering, Griffith University, Gold Coast, Australia.

出版信息

Microvasc Res. 2018 Nov;120:1-7. doi: 10.1016/j.mvr.2018.05.008. Epub 2018 May 24.

Abstract

Circulation of blood depends, in part, on the ability of red blood cells (RBCs) to aggregate, disaggregate, and deform. The primary intrinsic disaggregating force of RBCs is derived from their electronegativity, which is largely determined by sialylated glycoproteins on the plasma membrane. Given supraphysiological shear exposure - even at levels below those which induce hemolysis - alters cell morphology, we hypothesized that exposure to supraphysiological and subhemolytic shear would cleave membrane-bound sialic acid, altering the electrochemical and physical properties of RBCs, and thus increase RBC aggregation. Isolated RBCs from healthy donors (n = 20) were suspended in polyvinylpyrrolidinone. Using a Poiseuille shearing system, RBC suspensions were exposed to 125 Pa for 1.5 s for three duty-cycles. Following the first and third shear duty-cycle, samples were assessed for: RBC aggregation; the ability of RBCs to aggregate independent of plasma ("aggregability"); disaggregation shear rate; membrane-bound sialic acid content, and; cell electrophoretic mobility. Initial shear exposure significantly increased RBC aggregation, aggregability, and the shear required for rouleaux dispersion. Sialic acid concentration significantly decreased on isolated RBC membranes ghosts, and increased in the supernatant following shear. Initial shear exposure decreased the electrophoretic mobility of RBCs, decreasing the electronegative charge from -15.78 ± 0.31 to -7.55 ± 0.21 mV. Three exposures to the shear duty-cycle did not further compound altered RBC measures. A single exposure to supraphysiological and subhemolytic shear significantly decreased the electrochemical charge of the RBC membrane, concurrently increasing cell aggregation/aggregability. The cascading implications of hyperaggregation appears to potentially explain the ischemia-associated complications commonly reported following mechanical circulatory support.

摘要

血液的循环部分依赖于红细胞(RBC)聚集、解聚和变形的能力。RBC 的主要内在解聚力来自于其电负性,电负性在很大程度上由质膜上的唾液酸化糖蛋白决定。由于超生理剪切暴露——即使在低于诱导溶血的水平——会改变细胞形态,我们假设暴露于超生理和亚溶血剪切会切割膜结合的唾液酸,改变 RBC 的电化学和物理特性,从而增加 RBC 聚集。从健康供体中分离的 RBC(n=20)悬浮在聚乙烯吡咯烷酮中。使用泊肃叶剪切系统,将 RBC 悬浮液暴露于 125 Pa 下 1.5 s,进行三个占空比。在第一次和第三次剪切占空比之后,评估以下指标:RBC 聚集;RBC 独立于血浆聚集的能力(“聚集能力”);解聚剪切率;膜结合唾液酸含量;和细胞电泳迁移率。初始剪切暴露显著增加 RBC 聚集、聚集能力和形成红细胞缗钱状所需的剪切力。在分离的 RBC 膜血影蛋白上,唾液酸浓度显著降低,而在剪切后上清液中增加。初始剪切暴露降低 RBC 的电泳迁移率,使 RBC 带负电荷从-15.78±0.31 mV 降低至-7.55±0.21 mV。三次暴露于剪切占空比不会进一步改变 RBC 的测量值。单次暴露于超生理和亚溶血剪切显著降低 RBC 膜的电化学电荷,同时增加细胞聚集/聚集能力。超聚集的级联效应似乎可能解释了机械循环支持后常报告的与缺血相关的并发症。

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