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解析人类血小板细胞外囊泡组的生化结构和形态释放途径。

Dissecting the biochemical architecture and morphological release pathways of the human platelet extracellular vesiculome.

机构信息

Laboratory of Cellular Hematology, Office of Blood Research and Review, Center for Biologics Evaluation and Research, U.S. Food and Drug Administration, 10903 New Hampshire Avenue, WO Bldg. 52/72, Room 4210, Silver Spring, MD, USA.

Laboratory of Biochemistry and Vascular Biology, Office of Blood Research and Review, Center for Biologics Evaluation and Research, U.S. Food and Drug Administration, 10903 New Hampshire Avenue, WO Bldg. 52/72, Silver Spring, MD, 20993-0002, USA.

出版信息

Cell Mol Life Sci. 2018 Oct;75(20):3781-3801. doi: 10.1007/s00018-018-2771-6. Epub 2018 Feb 9.

Abstract

Platelet extracellular vesicles (PEVs) have emerged as potential mediators in intercellular communication. PEVs exhibit several activities with pathophysiological importance and may serve as diagnostic biomarkers. Here, imaging and analytical techniques were employed to unveil morphological pathways of the release, structure, composition, and surface properties of PEVs derived from human platelets (PLTs) activated with the thrombin receptor activating peptide (TRAP). Based on extensive electron microscopy analysis, we propose four morphological pathways for PEVs release from TRAP-activated PLTs: (1) plasma membrane budding, (2) extrusion of multivesicular α-granules and cytoplasmic vacuoles, (3) plasma membrane blistering and (4) "pearling" of PLT pseudopodia. The PLT extracellular vesiculome encompasses ectosomes, exosomes, free mitochondria, mitochondria-containing vesicles, "podiasomes" and PLT "ghosts". Interestingly, a flow cytometry showed a population of TOM20LC3 PEVs, likely products of platelet mitophagy. We found that lipidomic and proteomic profiles were different between the small PEV (S-PEVs; mean diameter 103 nm) and the large vesicle (L-PEVs; mean diameter 350 nm) fractions separated by differential centrifugation. In addition, the majority of PEVs released by activated PLTs was composed of S-PEVs which have markedly higher thrombin generation activity per unit of PEV surface area compared to L-PEVs, and contribute approximately 60% of the PLT vesiculome procoagulant potency.

摘要

血小板细胞外囊泡(PEVs)已成为细胞间通讯的潜在介质。PEVs 具有几种与病理生理学重要性相关的活性,并且可以作为诊断生物标志物。在这里,使用成像和分析技术揭示了源自人血小板(PLT)的 PEVs 的释放、结构、组成和表面特性的形态途径,这些 PLT 是通过凝血酶受体激活肽(TRAP)激活的。基于广泛的电子显微镜分析,我们提出了从 TRAP 激活的 PLT 释放 PEVs 的四种形态途径:(1)质膜出芽,(2)多泡α-颗粒和细胞质空泡的挤出,(3)质膜起泡和(4)PLT 伪足的“珍珠化”。PLT 细胞外囊泡组包括外泌体、外泌体、游离线粒体、含线粒体的囊泡、“podiasomes”和 PLT“幽灵”。有趣的是,流式细胞术显示了 TOM20LC3 PEVs 的群体,可能是血小板自噬的产物。我们发现,通过差异离心分离的小 PEV(S-PEVs;平均直径 103nm)和大囊泡(L-PEVs;平均直径 350nm)部分之间的脂质组学和蛋白质组学图谱不同。此外,激活的 PLT 释放的大多数 PEVs 由 S-PEVs 组成,与 L-PEVs 相比,S-PEVs 每单位 PEV 表面积的凝血酶生成活性明显更高,并且对 PLT 囊泡促凝血活性的贡献约为 60%。

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