Chan Tania R, Stahl Patrick J, Yu S Michael
Department of Materials Science and Engineering, Institute for NanoBioTechnology, The Johns Hopkins University, 3400 N. Charles St, Baltimore, MD 21218 (USA).
Adv Funct Mater. 2011 Nov 22;21(22):4252-4262. doi: 10.1002/adfm.201101163.
Long term survival and success of artificial tissue constructs depend greatly on vascularization. Endothelial cell (EC) differentiation and vasculature formation are dependent on spatio-temporal cues in the extracellular matrix that dynamically interact with cells, a process difficult to reproduce in artificial systems. Here we present a novel bifunctional peptide that mimics matrix-bound vascular endothelial growth factor (VEGF) and can be used to encode spatially controlled angiogenic signals in collagen scaffolds. The peptide is comprised of a collagen mimetic domain that was previously reported to bind to type I collagen by a unique hybridization mechanism, and a VEGF mimetic domain with pro-angiogenic activity. Circular dichroism and collagen binding studies confirm the triple helical structure and the collagen binding affinity of the collagen mimetic domain, and EC culture studies demonstrate the peptide's ability to induce endothelial cell morphogenesis and network formation as a matrix-bound factor in 2D and 3D collagen scaffolds. We also show spatial modification of collagen substrates with this peptide that allows localized EC activation and network formation. These results demonstrate that the peptide can be used to present spatially directed angiogenic cues in collagen scaffolds, which may be useful for engineering organized microvasculature.
人工组织构建体的长期存活和成功在很大程度上取决于血管化。内皮细胞(EC)分化和血管形成依赖于细胞外基质中与细胞动态相互作用的时空线索,这一过程在人工系统中难以重现。在此,我们展示了一种新型双功能肽,它模拟与基质结合的血管内皮生长因子(VEGF),可用于在胶原蛋白支架中编码空间可控的血管生成信号。该肽由一个胶原蛋白模拟结构域和一个具有促血管生成活性的VEGF模拟结构域组成,前者先前报道通过独特的杂交机制与I型胶原蛋白结合。圆二色性和胶原蛋白结合研究证实了胶原蛋白模拟结构域的三螺旋结构和胶原蛋白结合亲和力,内皮细胞培养研究表明,该肽作为二维和三维胶原蛋白支架中与基质结合的因子,具有诱导内皮细胞形态发生和网络形成的能力。我们还展示了用这种肽对胶原蛋白底物进行空间修饰,可实现局部内皮细胞激活和网络形成。这些结果表明,该肽可用于在胶原蛋白支架中呈现空间定向的血管生成线索,这可能有助于构建有组织的微血管。