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首页> 外文期刊>Blood: The Journal of the American Society of Hematology >Extracellular fluid tonicity impacts sickle red blood cell deformability and adhesion
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Extracellular fluid tonicity impacts sickle red blood cell deformability and adhesion

机译:细胞外液体张力影响镰状红细胞可变形性和粘附性

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摘要

Abnormal sickle red blood cell (sRBC) biomechanics, including pathological deformability and adhesion, correlate with clinical severity in sickle cell disease (SCD). Clinical intravenous fluids (IVFs) of various tonicities are often used during treatment of vasoocclusive pain episodes (VOE), the major cause of morbidity in SCD. However, evidence-based guidelines are lacking, and there is no consensus regarding which IVFs to use during VOE. Further, it is unknown how altering extracellular fluid tonicity with IVFs affects sRBC biomechanics in the microcirculation, where vaso-occlusion takes place. Here, we report how altering extracellular fluid tonicity with admixtures of clinical IVFs affects sRBC biomechanical properties by leveraging novel in vitro microfluidic models of the microcirculation, including 1 capable of deoxygenating the sRBC environment to monitor changes in microchannel occlusion risk and an "endothelialized" microvascular model that measures alterations in sRBC/endothelium adhesion under postcapillary venular conditions. Admixtures with higher tonicities (sodium 5 141 mEq/L) affected sRBC biomechanics by decreasing sRBC deformability, increasing sRBC occlusion under normoxic and hypoxic conditions, and increasing sRBC adhesion in our microfluidic human microvasculature models. Admixtures with excessive hypotonicity (sodium = 103 mEq/L), in contrast, decreasedsRBC adhesion, but overswelling prolonged sRBC transit times in capillary-sized microchannels. Admixtures with intermediate tonicities (sodium = 111-122 mEq/L) resulted in optimal changes in sRBC biomechanics, thereby reducing the risk for vaso-occlusion in our models. These results have significant translational implications for patients with SCD and warrant a large-scale prospective clinical study addressing optimal IVF management during VOE in SCD.
机译:异常镰状红细胞(SRBC)生物力学,包括病理可变形性和粘附性,与镰状细胞疾病(SCD)的临床严重程度相关。各种张力的临床静脉内液体(IVFS)经常在血管外疼痛发作(voe)的治疗过程中使用,这是SCD中发病率的主要原因。但是,缺乏基于证据的指导方针,并且没有关于在副中使用的IVFS的共识。此外,尚不清楚改变IVFS的细胞外液体张力如何影响微循环中的SRBC生物力学,其中血管闭塞发生。在此,通过利用微循环的微流体模型利用新的微流体模型,提出了如何改变临床IVFS的外细胞外液体张力的滋补性如何影响SRBC生物力学性质,其中包括能够脱氧的SRBC环境来监测微通道闭塞风险的变化和“内皮化”微血管测量后腺假血清条件下SRBC /内皮粘附改变的模型。通过降低SRBC可变形性,增加常氧和缺氧条件下的SRBC闭塞,增加了SRBC生物力学,并在微流体人微血管结构模型中增加了SRBC闭塞,增加了SRBC生物力学的混合物。相比之下,具有过度低渗(钠= 103meq / L)的混合物减少,但毛细管大小的微通道中的延长了延长的SRBC过渡时间。具有中间张力的混合物(= 111-122 Meq / L)导致SRBC生物力学的最佳变化,从而降低了我们模型中血管闭塞的风险。这些结果对SCD的患者具有显着的翻译意义,并保证了一个大规模的前瞻性临床研究,在SCD的副本期间解决了最佳IVF管理。

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    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

    Univ Minnesota Dept Biomed Engn Minneapolis MN USA;

    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

    Univ Minnesota Dept Biomed Engn Minneapolis MN USA;

    Emory Univ Sch Med Aflac Canc &

    Blood Disorders Ctr Div Pediat Hematol Oncol Dept Pediat;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 血液及淋巴系疾病;
  • 关键词

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