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Engineering fibrin matrices: the engagement of polymerization pockets through fibrin knob technology for the delivery and retention of therapeutic proteins.

机译:工程纤维蛋白基质:通过纤维蛋白瘤技术的聚合口袋的结合,用于递送和保留治疗性蛋白质。

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Engineering extracellular matrices that utilize the body's natural healing capacity enable the progression of regenerative therapies. Fibrin, widely used as a surgical sealant, is one such matrix that may be augmented by the addition of protein factors to promote cell infiltration and differentiation. The thrombin-catalyzed conversion of fibrinogen to fibrin exposes N-terminal fibrin knobs that bind to C-terminal pockets to form the fibrin network. Here, we have created a platform system for the production of therapeutic proteins that capitalize on these native knob:pocket interactions for protein delivery within fibrin matrices. This system enables the retention of therapeutic proteins within fibrin without additional enzymatic or synthetic crosslinking factors. Using an integrin-binding fibronectin fragment as a model protein, we demonstrate that engineered knob-protein fusions bind consistently and specifically to fibrin(ogen). Equilibrium dissociation constants (K(D)) obtained using surface plasmon resonance indicate that these fusions have mum binding affinities, comparable to the native knob-containing fibrin fragments. The specificity of these interactions was verified by ELISA in the presence of molar excess of competing knob mimics. Release profiles and real-time confocal imaging demonstrate that the fusions were retained within fibrin matrices, even under the stringent continuous perfusion conditions used in the latter. In summary, this work explores the benefits and limitations of engaging native, biologically-inspired, non-covalent knob:pocket interactions within fibrin(ogen) for the retention of therapeutic proteins in fibrin matrices and provides insight into the stability of native knob:pocket interactions within fibrin networks.
机译:利用人体自然愈合能力的工程化细胞外基质可以促进再生疗法的发展。广泛用作外科手术密封剂的纤维蛋白就是这样一种基质,可以通过添加蛋白质因子来促进细胞浸润和分化来增强纤维蛋白。凝血酶催化的血纤蛋白原向血纤蛋白的转化暴露了与C末端口袋结合形成血纤蛋白网络的N末端血纤蛋白结。在这里,我们创建了一个平台系统来生产治疗性蛋白质,该平台系统利用了这些天然的旋钮:口袋相互作用,在纤维蛋白基质内传递蛋白质。该系统能够将治疗性蛋白质保留在纤维蛋白内,而无需其他酶促或合成交联因子。使用整合素结合的纤连蛋白片段作为模型蛋白,我们证明了工程化的旋钮蛋白融合体始终如一地和特异性地结合到fibrin(ogen)。使用表面等离振子共振获得的平衡解离常数(K(D))表明,这些融合具有与天然的含球形结纤维蛋白片段相当的妈妈结合亲和力。这些相互作用的特异性在摩尔过量的竞争性纽扣模拟物存在下通过ELISA验证。释放曲线和实时共聚焦成像表明,即使在后者所用的严格连续灌注条件下,融合物仍保留在血纤蛋白基质中。总而言之,这项工作探索了在纤维蛋白(原)中进行天然,受生物启发的非共价纽结:口袋相互作用在纤维蛋白基质中保留治疗蛋白的好处和局限性,并为天然纽结:口袋的稳定性提供了见识。纤维蛋白网络内的相互作用。

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