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Laminin Peptide-Immobilized Hydrogels Modulate Valve Endothelial Cell Hemostatic Regulation

机译:层粘连蛋白肽固定的水凝胶调节瓣膜内皮细胞的止血调节。

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摘要

Valve endothelial cells (VEC) have unique phenotypic responses relative to other types of vascular endothelial cells and have highly sensitive hemostatic functions affected by changes in valve tissues. Furthermore, effects of environmental factors on VEC hemostatic function has not been characterized. This work used a poly(ethylene glycol) diacrylate (PEGDA) hydrogel platform to evaluate the effects of substrate stiffness and cell adhesive ligands on VEC phenotype and expression of hemostatic genes. Hydrogels of molecular weights (MWs) 3.4, 8, and 20 kDa were polymerized into platforms of different rigidities and thiol-modified cell adhesive peptides were covalently bound to acrylate groups on the hydrogel surfaces. The peptide RKRLQVQLSIRT (RKR) is a syndecan-1 binding ligand derived from laminin, a trimeric protein and a basement membrane matrix component. Conversely, RGDS is an integrin binding peptide found in many extracellular matrix (ECM) proteins including fibronectin, fibrinogen, and von Willebrand factor (VWF). VECs adhered to and formed a stable monolayer on all RKR-coated hydrogel-MW combinations. RGDS-coated platforms supported VEC adhesion and growth on RGDS-3.4 kDa and RGDS-8 kDa hydrogels. VECs cultured on the softer RKR-8 kDa and RKR-20 kDa hydrogel platforms had significantly higher gene expression for all anti-thrombotic (ADAMTS-13, tissue factor pathway inhibitor, and tissue plasminogen activator) and thrombotic (VWF, tissue factor, and P-selectin) proteins than VECs cultured on RGDS-coated hydrogels and tissue culture polystyrene controls. Stimulated VECs promoted greater platelet adhesion than non-stimulated VECs on their respective culture condition; yet stimulated VECs on RGDS-3.4 kDa gels were not as responsive to stimulation relative to the RKR-gel groups. Thus, the syndecan binding, laminin-derived peptide promoted stable VEC adhesion on the softer hydrogels and maintained VEC phenotype and natural hemostatic function. In conclusion, utilization of non-integrin adhesive peptide sequences derived from basement membrane ECM may recapitulate balanced VEC function and may benefit endothelialization of valve implants.
机译:相对于其他类型的血管内皮细胞,瓣膜内皮细胞(VEC)具有独特的表型反应,并且具有受瓣膜组织变化影响的高度敏感的止血功能。此外,尚未表征环境因素对VEC止血功能的影响。这项工作使用聚(乙二醇)二丙烯酸酯(PEGDA)水凝胶平台来评估底物刚度和细胞粘附配体对VEC表型和止血基因表达的影响。分子量(MWs)3.4、8和20 kDa的水凝胶被聚合到具有不同刚性的平台上,并且巯基修饰的细胞粘附肽与水凝胶表面的丙烯酸酯基团共价结合。肽RKRLQVQLSIRT(RKR)是从层粘连蛋白,三聚体蛋白和基底膜基质成分衍生而来的syndecan-1结合配体。相反,RGDS是在许多细胞外基质(ECM)蛋白(包括纤连蛋白,纤维蛋白原和血管性血友病因子(VWF))中发现的整合素结合肽。 VEC粘附并在所有RKR涂层的水凝胶-MW组合上形成稳定的单层。 RGDS涂层平台支持VEDS在RGDS-3.4 kDa和RGDS-8 kDa水凝胶上的粘附和生长。在较软的RKR-8 kDa和RKR-20 kDa水凝胶平台上培养的VEC对于所有抗血栓形成的(ADAMTS-13,组织因子途径抑制剂和组织纤溶酶原激活物)和血栓形成的(VWF,组织因子和P-selectin)蛋白比在RGDS包被的水凝胶和组织培养聚苯乙烯对照上培养的VEC更高。在其各自的培养条件下,受刺激的VEC促进的血小板粘附性高于未受刺激的VEC。然而,相对于RKR凝胶组,RGDS-3.4 kDa凝胶上刺激的VEC对刺激的反应并不那么敏感。因此,与聚糖结合的层粘连蛋白衍生的肽促进了VEC在较软的水凝胶上的稳定粘附,并保持了VEC表型和天然止血功能。总之,利用源自基底膜ECM的非整联蛋白粘附肽序列可以概括平衡的VEC功能,并可能有益于瓣膜植入物的内皮化。

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