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活性氧和一氧化氮对红细胞变形性的影响

On the Effects of Reactive Oxygen Species and Nitric Oxide on Red Blood Cell Deformability.

作者信息

Diederich Lukas, Suvorava Tatsiana, Sansone Roberto, Keller T C Stevenson, Barbarino Frederik, Sutton Thomas R, Kramer Christian M, Lückstädt Wiebke, Isakson Brant E, Gohlke Holger, Feelisch Martin, Kelm Malte, Cortese-Krott Miriam M

机构信息

Cardiovascular Research Laboratory, Division of Cardiology, Pneumology and Vascular Medicine, Medical Faculty, Heinrich-Heine-University Düsseldorf, Düsseldorf, Germany.

Department of Molecular Physiology and Biological Physics, Robert M. Berne Cardiovascular Research Center, University of Virginia, Charlottesville, VA, United States.

出版信息

Front Physiol. 2018 May 11;9:332. doi: 10.3389/fphys.2018.00332. eCollection 2018.

Abstract

The main function of red blood cells (RBCs) is the transport of respiratory gases along the vascular tree. To fulfill their task, RBCs are able to elastically deform in response to mechanical forces and, pass through the narrow vessels of the microcirculation. Decreased RBC deformability was observed in pathological conditions linked to increased oxidative stress or decreased nitric oxide (NO) bioavailability, like hypertension. Treatments with oxidants and with NO were shown to affect RBC deformability , but the mechanisms underpinning these effects are unknown. In this study we investigate whether changes in intracellular redox status/oxidative stress or nitrosation reactions induced by reactive oxygen species (ROS) or NO may affect RBC deformability. In a case-control study comparing RBCs from healthy and hypertensive participants, we found that RBC deformability was decreased, and levels of ROS were increased in RBCs from hypertensive patients as compared to RBCs from aged-matched healthy controls, while NO levels in RBCs were not significantly different. To study the effects of oxidants on RBC redox state and deformability, RBCs from healthy volunteers were treated with increasing concentrations of -butylhydroperoxide (BuOOH). We found that high concentrations of -BuOOH (≥ 1 mM) significantly decreased the GSH/GSSG ratio in RBCs, decreased RBC deformability and increased blood bulk viscosity. Moreover, RBCs from Nrf2 knockout (KO) mice, a strain genetically deficient in a number of antioxidant/reducing enzymes, were more susceptible to -BuOOH-induced impairment in RBC deformability as compared to wild type (WT) mice. To study the role of NO in RBC deformability we treated RBC suspensions from human volunteers with NO donors and nitrosothiols and analyzed deformability of RBCs from mice lacking the endothelial NO synthase (eNOS). We found that NO donors induced S-nitrosation of the cytoskeletal protein spectrin, but did not affect human RBC deformability or blood bulk viscosity; moreover, under unstressed conditions RBCs from eNOS KO mice showed fully preserved RBC deformability as compared to WT mice. Pre-treatment of human RBCs with nitrosothiols rescued -BuOOH-mediated loss of RBC deformability. Taken together, these findings suggest that NO does not affect RBC deformability , but preserves RBC deformability in conditions of oxidative stress.

摘要

红细胞(RBCs)的主要功能是沿着血管树运输呼吸气体。为了完成其任务,红细胞能够响应机械力而发生弹性变形,并穿过微循环的狭窄血管。在与氧化应激增加或一氧化氮(NO)生物利用度降低相关的病理状况(如高血压)中,观察到红细胞变形能力下降。氧化剂和NO处理均显示会影响红细胞变形能力,但其作用机制尚不清楚。在本研究中,我们调查了活性氧(ROS)或NO诱导的细胞内氧化还原状态/氧化应激或亚硝化反应的变化是否会影响红细胞变形能力。在一项比较健康和高血压参与者红细胞的病例对照研究中,我们发现与年龄匹配的健康对照者的红细胞相比,高血压患者的红细胞变形能力下降,且红细胞内ROS水平升高,而红细胞内NO水平无显著差异。为了研究氧化剂对红细胞氧化还原状态和变形能力的影响,用浓度递增的叔丁基过氧化氢(BuOOH)处理健康志愿者的红细胞。我们发现高浓度的叔丁基过氧化氢(≥1 mM)显著降低了红细胞内谷胱甘肽(GSH)/氧化型谷胱甘肽(GSSG)比值,降低了红细胞变形能力,并增加了血液体积黏度。此外,与野生型(WT)小鼠相比,Nrf2基因敲除(KO)小鼠(一种在多种抗氧化/还原酶方面存在基因缺陷的品系)的红细胞对叔丁基过氧化氢诱导的红细胞变形能力损伤更敏感。为了研究NO在红细胞变形能力中的作用,我们用NO供体和亚硝基硫醇处理人类志愿者的红细胞悬液,并分析了缺乏内皮型一氧化氮合酶(eNOS)的小鼠红细胞的变形能力。我们发现NO供体诱导细胞骨架蛋白血影蛋白发生S-亚硝化,但不影响人类红细胞变形能力或血液体积黏度;此外,在无应激条件下,与WT小鼠相比,eNOS基因敲除小鼠的红细胞变形能力完全保留。用亚硝基硫醇预处理人类红细胞可挽救叔丁基过氧化氢介导的红细胞变形能力丧失。综上所述,这些发现表明NO不影响红细胞变形能力,但在氧化应激条件下可维持红细胞变形能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b57/5958211/0d84c6686faa/fphys-09-00332-g0001.jpg

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