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剪切应力通过上调血小板糖苷酶活性促进血小板糖基化重塑:还有一点。

Shear Stress Promotes Remodeling of Platelet Glycosylation via Upregulation of Platelet Glycosidase Activity: One More Thing.

作者信息

Roka-Moiia Yana, Lewis Sabrina, Cleveland Estevan, Italiano Joseph E, Slepian Marvin J

机构信息

Department of Medicine and Biomedical Engineering, Sarver Heart Center, University of Arizona, Tucson, Arizona, United States.

Arizona Center for Accelerated Biomedical Innovation, Tucson, Arizona, United States.

出版信息

Thromb Haemost. 2025 Apr;125(4):317-336. doi: 10.1055/a-2398-9532. Epub 2024 Aug 21.

DOI:10.1055/a-2398-9532
PMID:39168140
Abstract

Mechanical circulatory support (MCS) is a mainstay of therapy for advanced and end-stage heart failure. Accompanied by systemic anticoagulation, contemporary MCS has become less thrombogenic, with bleeding complications emerging as a major cause of readmission and 1-year mortality. Shear-mediated platelet dysfunction and thrombocytopenia of undefined etiology are primary drivers of MCS-related bleeding. Recently, it has been demonstrated that deprivation of platelet surface glycosylation is associated with the decline of hemostatic function, microvesiculation, and premature apoptosis. We test the hypothesis that shear stress induces remodeling of platelet surface glycosylation via upregulation of glycosidase activity, thus facilitating platelet count decline and intense microvesiculation.Human gel-filtered platelets were exposed to continuous shear stress in vitro. Platelets and platelet-derived microparticles (PDMPs) were quantified via flow cytometry using size standard fluorescent nanobeads. Platelet surface glycosylation and NEU1 expression were evaluated using lectin- or immune-staining and multicolor flow cytometry; lectin blotting was utilized to verify glycosylation of individual glycoproteins. Platelet neuraminidase, galactosidase, hexosaminidase, and mannosidase activities were quantified using 4-methylumbelliferone-based fluorogenic substrates.We demonstrate that shear stress promotes selective remodeling of platelet glycosylation via downregulation of 2,6-sialylation, terminal galactose, and mannose, while 2,3-sialylation remains largely unchanged. Shear-mediated deglycosylation is partially attenuated by neuraminidase inhibitors, strongly suggesting the involvement of platelet neuraminidase in observed phenomena. Shear stress increases platelet NEU1 surface expression and potentiates generation of numerous NEU1+ PDMPs. Platelets exhibit high basal hexosaminidase and mannosidase activities; basal activities of platelet neuraminidase and galactosidase are rather low and are significantly upregulated by shear stress. Shear stress of increased magnitude and duration promotes an incremental decline of platelet count and immense microvesiculation, both being further exacerbated by neuraminidase and partially attenuated by neuraminidase inhibition.Our data indicate that shear stress accumulation, consistent with supraphysiologic conditions of device-supported circulation, promotes remodeling of platelet glycosylation via selective upregulation of platelet glycosidase activity. Shear-mediated platelet deglycosylation is associated with platelet count drop and increased microvesiculation, thus offering a direct link between deglycosylation and thrombocytopenia observed in device-supported patients. Based on our findings, we propose a panel of molecular markers to be used for reliable detection of shear-mediated platelet deglycosylation in MCS.

摘要

机械循环支持(MCS)是晚期和终末期心力衰竭治疗的主要手段。伴随着全身抗凝,当代MCS的血栓形成倾向降低,出血并发症成为再次入院和1年死亡率的主要原因。剪切力介导的血小板功能障碍和病因不明的血小板减少是MCS相关出血的主要驱动因素。最近,有研究表明血小板表面糖基化缺失与止血功能下降、微泡形成和过早凋亡有关。我们检验了以下假设:剪切应力通过上调糖苷酶活性诱导血小板表面糖基化重塑,从而促进血小板计数下降和强烈的微泡形成。

体外将人凝胶过滤血小板暴露于持续剪切应力下。使用尺寸标准荧光纳米珠通过流式细胞术对血小板和血小板衍生的微粒(PDMPs)进行定量。使用凝集素或免疫染色以及多色流式细胞术评估血小板表面糖基化和NEU1表达;利用凝集素印迹法验证单个糖蛋白的糖基化。使用基于4-甲基伞形酮的荧光底物定量血小板神经氨酸酶、半乳糖苷酶、己糖胺酶和甘露糖苷酶的活性。

我们证明,剪切应力通过下调2,6-唾液酸化、末端半乳糖和甘露糖促进血小板糖基化的选择性重塑,而2,3-唾液酸化基本保持不变。神经氨酸酶抑制剂可部分减弱剪切力介导的去糖基化作用,这强烈表明血小板神经氨酸酶参与了观察到的现象。剪切应力增加血小板NEU1表面表达并增强大量NEU1+ PDMPs的生成。血小板表现出高基础己糖胺酶和甘露糖苷酶活性;血小板神经氨酸酶和半乳糖苷酶的基础活性相当低,且在剪切应力作用下显著上调。强度和持续时间增加的剪切应力促进血小板计数逐渐下降和大量微泡形成,神经氨酸酶会进一步加剧这两种情况,而神经氨酸酶抑制可部分减弱它们。

我们的数据表明,与装置支持循环的超生理条件一致的剪切应力积累,通过选择性上调血小板糖苷酶活性促进血小板糖基化重塑。剪切力介导的血小板去糖基化与血小板计数下降和微泡形成增加有关,从而在装置支持的患者中建立了去糖基化与血小板减少之间的直接联系。基于我们的研究结果,我们提出了一组分子标志物,用于可靠检测MCS中剪切力介导的血小板去糖基化。

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