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A factor VIII-derived peptide enables von Willebrand factor (VWF)-binding of artificial platelet nanoconstructs without interfering with VWF-adhesion of natural platelets

机译:因子VIII衍生的肽能够使人造血小板纳米结构的von Willebrand因子(VWF)结合而不会干扰天然血小板的VWF粘附

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摘要

There is substantial clinical interest in synthetic platelet analogs for potential application in transfusion medicine. To this end, our research is focused on self-assembled peptide–lipid nanoconstructs that can undergo injury site-selective adhesion and subsequently promote site-directed active platelet aggregation, thus mimicking platelet’s primary hemostatic actions. For injury site-selective adhesion, we have utilized a coagulation factor FVIII-derived VWF-binding peptide (VBP). FVIII binds to VWF’s D′–D3 domain while natural platelet GPIbα binds to VWF’s A1 domain. Therefore, we hypothesized that the VBP-decorated nanoconstructs will adhere to VWF without mutual competition with natural platelets. We further hypothesized that the adherent VBP-decorated constructs can enhance platelet aggregation when co-decorated with a fibrinogen-mimetic peptide (FMP). To test these hypotheses, we used glycocalicin to selectively block VWF’s A1 domain and, using fluorescence microscopy, studied the binding of fluorescently labeled VBP-decorated nanoconstructs versus platelets to ristocetin-treated VWF. Subsequently, we co-decorated the nanoconstructs with VBP and FMP and incubated them with human platelets to study construct-mediated enhancement of platelet aggregation. Decoration with VBP resulted in substantial construct adhesion to ristocetin-treated VWF even if the A1-domain was blocked by glycocalicin. In comparison, such A1-blocking resulted in significant reduction of platelet adhesion. Without A1-blocking, the VBP-decorated constructs and natural platelets could adhere to VWF concomitantly. Furthermore, the constructs co-decorated with VBP and FMP enhanced active platelet aggregation. The results indicate significant promise in utilizing the FVIII-derived VBP in developing synthetic platelet analogs that do not interfere with VWF-binding of natural platelets but allow site-directed enhancement of platelet aggregation when combined with FMP.
机译:对于潜在地在输血医学中应用的合成血小板类似物有很大的临床兴趣。为此,我们的研究集中在可自组装的肽-脂质纳米结构上,这些结构可能会发生损伤部位选择性粘附并随后促进定点活性血小板聚集,从而模仿血小板的主要止血作用。对于损伤部位选择性粘附,我们利用了凝血因子FVIII衍生的VWF结合肽(VBP)。 FVIII与VWF的D'-D3结构域结合,而天然血小板GPIbα与VWF的A1结构域结合。因此,我们假设装饰VBP的纳米结构将粘附在VWF上而不会与天然血小板相互竞争。我们进一步假设,与纤维蛋白原模拟肽(FMP)共同装饰时,贴有VBP修饰的构建体可以增强血小板聚集。为了检验这些假设,我们使用糖钙素选择性地阻断VWF的A1结构域,并使用荧光显微镜研究了荧光标记的VBP修饰的纳米结构与血小板与瑞斯托霉素处理的VWF的结合。随后,我们与VBP和FMP共修饰了纳米构建体,并将其与人血小板一起孵育以研究构建体介导的血小板聚集增强。用VBP进行装饰,即使A1结构域被糖钙素阻断,也导致其与力斯托汀处理过的VWF发生大量粘附。相比之下,这种A1阻滞导致血小板粘附的显着降低。如果没有A1阻滞,装饰VBP的构建体和天然血小板可能会同时粘附于VWF。此外,用VBP和FMP共同装饰的构建体增强了活性血小板聚集。结果表明在开发合成血小板类似物时利用FVIII衍生的VBP具有很大的前景,该类似物不干扰天然血小板的VWF结合,但与FMP结合时可定点增强血小板聚集。

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