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首页> 外文期刊>Cell biochemistry and biophysics >The stiffness of three-dimensional ionic self-assembling peptide gels affects the extent of capillary-like network formation.
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The stiffness of three-dimensional ionic self-assembling peptide gels affects the extent of capillary-like network formation.

机译:三维离子自组装肽凝胶的刚度会影响毛细管状网络的形成程度。

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摘要

Improving our ability to control capillary morphogenesis has implications for not only better understanding of basic biology, but also for applications in tissue engineering and in vitro testing. Numerous biomaterials have been investigated as cellular supports for these applications and the biophysical environment biomaterials provide to cells has been increasingly recognized as an important factor in directing cell function. Here, the ability of ionic self-assembling peptide gels to support capillary morphogenesis and the effect of their mechanical properties is investigated. When placed in a physiological salt solution, these oligopeptides spontaneously self-assemble into gels with an extracellular matrix (ECM)-like microarchitecture. To evaluate the ability of three-dimensional (3D) self-assembled peptide gels to support capillary-like network formation, human umbilical vein endothelial cells (HUVECs) were embedded within RAD16-I ((RADA)4) or RAD16-II ((RARADADA)2) peptide gels with various stiffness values. As peptide stiffness is decreased cells show increased elongation and are increasingly able to contract gels. The observation that capillary morphogenesis is favored in more malleable substrates is consistent with previous reports using natural biomaterials. The structural properties of peptide gels and their ability to support capillary morphogenesis in vitro make them promising biomaterials to investigate for numerous biomedical applications.
机译:改善我们控制毛细血管形态发生的能力不仅对更好地了解基础生物学有重要意义,而且对组织工程和体外测试中的应用也有影响。已经研究了许多生物材料作为这些应用的细胞支持,并且越来越多地认识到生物材料提供给细胞的生物物理环境是指导细胞功能的重要因素。在此,研究了离子自组装肽凝胶支持毛细管形态发生的能力及其机械性能的影响。当置于生理盐溶液中时,这些寡肽会自发自组装成具有细胞外基质(ECM)样微结构的凝胶。为了评估三维(3D)自组装肽凝胶支持毛细血管样网络形成的能力,将人脐静脉内皮细胞(HUVEC)嵌入RAD16-I((RADA)4)或RAD16-II(( RARADADA)2)具有各种刚度值的肽凝胶。随着肽刚度的降低,细胞显示出增加的伸长率,并且越来越能够收缩凝胶。毛细血管形态发生在可延展性更好的基质中受到青睐的观察与先前使用天然生物材料的报道一致。肽凝胶的结构特性及其在体外支持毛细管形态发生的能力使其成为有望用于众多生物医学应用的生物材料。

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