Jung Jangwook P, Jones Julia L, Cronier Samantha A, Collier Joel H
Department of Biomedical Engineering, University of Cincinnati, Cincinnati, OH 45221, USA.
Biomaterials. 2008 May;29(13):2143-51. doi: 10.1016/j.biomaterials.2008.01.008. Epub 2008 Feb 7.
Hydrogels produced from self-assembling peptides and peptide derivatives are being investigated as synthetic extracellular matrices for defined cell culture substrates and scaffolds for regenerative medicine. In many cases, however, they are less stiff than the tissues and extracellular matrices they are intended to mimic, and they are prone to cohesive failure. We employed native chemical ligation to produce peptide bonds between the termini of fibrillized beta-sheet peptides to increase gel stiffness in a chemically specific manner while maintaining the morphology of the self-assembled fibrils. Polymerization, fibril structure, and mechanical properties were measured by SDS-PAGE, mass spectrometry, TEM, circular dichroism, and oscillating rheometry; and cellular responses to matrix stiffening were investigated in cultures of human umbilical vein endothelial cells (HUVECs). Ligation led to a fivefold increase in storage modulus and a significant enhancement of HUVEC proliferation and expression of CD31 on the surface of the gels. The approach was also orthogonal to the inclusion of unprotected RGD-functionalized self-assembling peptides, which further increased proliferation. This strategy broadens the utility of self-assembled peptide materials for applications that require enhancement or modulation of matrix mechanical properties by providing a chemoselective means for doing so without significantly disrupting the gels' fibrillar structure.
由自组装肽和肽衍生物制成的水凝胶正作为用于特定细胞培养底物的合成细胞外基质以及再生医学支架进行研究。然而,在许多情况下,它们的硬度低于其想要模拟的组织和细胞外基质,并且容易发生内聚破坏。我们采用天然化学连接在纤维化β-折叠肽的末端之间形成肽键,以化学特异性方式增加凝胶硬度,同时保持自组装纤维的形态。通过SDS-PAGE、质谱、透射电子显微镜(TEM)、圆二色性和振荡流变学测量聚合、纤维结构和机械性能;并在人脐静脉内皮细胞(HUVEC)培养物中研究细胞对基质硬化的反应。连接导致储能模量增加五倍,并显著增强HUVEC增殖以及凝胶表面CD31的表达。该方法与包含未保护的RGD功能化自组装肽也是正交的,这进一步增加了增殖。该策略通过提供一种化学选择性手段来增强或调节基质机械性能,而不会显著破坏凝胶的纤维结构,从而拓宽了自组装肽材料在需要此类应用中的实用性。