Enzymatic regulation of functional vascular networks using gelatin hydrogels.

Enzymatic regulation of functional vascular networks using gelatin hydrogels.
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DOI:
10.1016/j.actbio.2015.02.024
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发表时间:
2015-06
期刊:
影响因子:
9.7
通讯作者:
Chen YC
Chen YC
中科院分区:
工程技术1区
文献类型:
--
作者:
Chuang CH;Lin RZ;Tien HW;Chu YC;Li YC;Melero-Martin JM;Chen YC

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为了制造基于组织工程的功能性组织,需要能够充分血管化以模拟天然组织的功能性和复杂性的支架材料。目前,血管网络生物工程主要使用天然水凝胶作为包埋支架进行,但大多数天然水凝胶具有差的机械稳定性和耐久性,这些因素严重限制了它们的广泛使用。在这项研究中,我们研究了明胶-酚羟基(明胶-Ph)水凝胶的适用性,可以酶促交联,允许调整储能模量和蛋白水解降解速率,用作可注射水凝胶,以支持基于人祖细胞的稳定和成熟的血管网络的形成。发现猪明胶-Ph水凝胶与人血液来源的内皮集落形成细胞和白色脂肪组织来源的间充质干细胞具有细胞相容性,导致>87%的存活率,并且可以通过使用具有不同蛋白水解降解性和刚度的水凝胶来调节细胞增殖和扩散。此外,从小鼠真皮中提取明胶并制备小鼠明胶-Ph水凝胶。重要的是,将载有人细胞的猪或鼠明胶-Ph水凝胶植入免疫缺陷小鼠体内,导致生物工程化的人血管网络和小鼠血管系统之间快速形成功能性血管瘤。此外,明胶-Ph水凝胶的酶交联程度可用于调节体内细胞行为和血管网络形成的程度。我们的报告详细介绍了从同种异体或异种真皮皮肤合成明胶-Ph水凝胶的技术,并表明这些水凝胶可用于需要形成微血管网络的生物医学应用,包括开发复杂的工程组织。
To manufacture tissue engineering-based functional tissues, scaffold materials that can be sufficiently vascularized to mimic the functionality and complexity of native tissues are needed. Currently, vascular network bioengineering is largely carried out using natural hydrogels as embedding scaffolds, but most natural hydrogels have poor mechanical stability and durability, factors that critically limit their widespread use. In this study, we examined the suitability of gelatin-phenolic hydroxyl (gelatin-Ph) hydrogels that can be enzymatically crosslinked, allowing tuning of the storage modulus and the proteolytic degradation rate, for use as injectable hydrogels to support the human progenitor cell-based formation of a stable and mature vascular network. Porcine gelatin-Ph hydrogels were found to be cytocompatible with human blood-derived endothelial colony-forming cells and white adipose tissue-derived mesenchymal stem cells, resulting in >87% viability, and cell proliferation and spreading could be modulated by using hydrogels with different proteolytic degradability and stiffness. In addition, gelatin was extracted from mouse dermis and murine gelatin-Ph hydrogels were prepared. Importantly, implantation of human cell-laden porcine or murine gelatin-Ph hydrogels into immunodeficient mice resulted in the rapid formation of functional anastomoses between the bioengineered human vascular network and the mouse vasculature. Furthermore, the degree of enzymatic crosslinking of the gelatin-Ph hydrogels could be used to modulate cell behavior and the extent of vascular network formation in vivo. Our report details a technique for the synthesis of gelatin-Ph hydrogels from allogeneic or xenogeneic dermal skin and suggests that these hydrogels can be used for biomedical applications that require the formation of microvascular networks, including the development of complex engineered tissues.