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Tailoring material properties of a nanofibrous extracellular matrix derived hydrogel

机译:纳米纤维细胞外基质衍生水凝胶的剪裁材料性能

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In the native tissue, the interaction between cells and the extracellular matrix (ECM) is essential for cell migration, proliferation, differentiation, mechanical stability, and signaling. It has been shown that decellularized ECMs can be processed into injectable formulations, thereby allowing for minimally invasive delivery. Upon injection and increase in temperature, these materials self-assemble into porous gels forming a complex network of fibers with nanoscale structure. In this study we aimed to examine and tailor the material properties of a self-assembling ECM hydrogel derived from porcine myocardial tissue, which was developed as a tissue specific injectable scaffold for cardiac tissue engineering. The impact of gelation parameters on ECM hydrogels has not previously been explored. We examined how modulating pH, temperature, ionic strength, and concentration affected the nanoscale architecture, mechanical properties, and gelation kinetics. These material characteristics were assessed using scanning electron microscopy, rheometry, and spectrophotometry, respectively. Since the main component of the myocardial matrix is collagen, many similarities between the ECM hydrogel and collagen gels were observed in terms of the nanofibrous structure and modulation of properties by altering ionic strength. However, variation from collagen gels was noted for the gelation temperature along with varied times and rates of gelation. These discrepancies when compared to collagen are likely due to the presence of other ECM components in the decellularized ECM based hydrogel. These results demonstrate how the material properties of ECM hydrogels could be tailored for future in vitro and in vivo applications.
机译:在天然组织中,细胞与细胞外基质(ECM)之间的相互作用对于细胞迁移,增殖,分化,机械稳定性和信号传导至关重要。已经表明,脱细胞的ECM可以加工成可注射的制剂,从而允许微创递送。注射并升温后,这些材料会自组装成多孔凝胶,形成具有纳米级结构的复杂纤维网络。在这项研究中,我们旨在检查和定制源自猪心肌组织的自组装ECM水凝胶的材料特性,该凝胶被开发为用于心脏组织工程的组织特异性可注射支架。凝胶参数对ECM水凝胶的影响以前没有被探讨过。我们研究了调节pH,温度,离子强度和浓度如何影响纳米级结构,机械性能和胶凝动力学。这些材料特性分别使用扫描电子显微镜,流变法和分光光度法进行评估。由于心肌基质的主要成分是胶原蛋白,因此在ECM水凝胶和胶原蛋白凝胶之间就纳米纤维结构和通过改变离子强度进行的性能调节而言,存在许多相似之处。然而,注意到胶凝温度随胶原蛋白凝胶的变化以及胶凝的时间和速率不同。与胶原蛋白相比,这些差异可能是由于在脱细胞的基于ECM的水凝胶中存在其他ECM成分。这些结果表明,如何为未来的体外和体内应用量身定制ECM水凝胶的材料特性。

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