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丝膜的表面图案化和固有物理化学属性共同调控血管细胞动力学。

Surface Patterning and Innate Physicochemical Attributes of Silk Films Concomitantly Govern Vascular Cell Dynamics.

作者信息

Gupta Prerak, Moses Joseph Christakiran, Mandal Biman B

机构信息

Biomaterial and Tissue Engineering Laboratory, Department of Biosciences and Bioengineering, Indian Institute of Technology Guwahati, Guwahati-781039, Assam, India.

出版信息

ACS Biomater Sci Eng. 2019 Feb 11;5(2):933-949. doi: 10.1021/acsbiomaterials.8b01194. Epub 2018 Dec 13.

Abstract

Functional impairment of vascular cells is associated with cardiovascular pathologies. Recent literature clearly presents evidence relating cell microenvironment and their function. It is crucial to understand the cell-material interaction while designing a functional tissue engineered vascular graft. Natural silk biopolymer has shown potential for various tissue-engineering applications. In the present work, we aimed to explore the combinatorial effect of variable innate physicochemical properties and topographies of silk films on functional behavior of vascular cells. Silk proteins from different varieties (mulberry , BM; and non-mulberry , AA) possess unique inherent amino acid composition that leads to variable surface properties (roughness, wettability, chemistry, and mechanical stiffness). In addition, we engineered the silk film surfaces and printed a microgrooved pattern to induce unidirectional cell orientation mimicking their native form. Patterned silk films induced unidirectional alignment of porcine vascular cells. Regardless of alignment, endothelial cells (ECs) proliferated favorably on AA films; however, it suppressed production of nitric oxide (NO), an endogenous vasodilator. Unidirectional alignment of smooth muscle cells (SMCs) encouraged contractile phenotype as indicated by minimal cell proliferation, increment of quiescent (G0) phase cells, and upregulation of contractile genes. Moderately hydrophilic flat BM films induced cell aggregation and augmented the expression of contractile genes (for SMCs) and endothelial nitric oxide synthase, eNOS (for ECs). Functional studies further confirmed SMCs' alignment improving collagen production, remodeling ability (matrix metalloproteinase, MMP-2 and MMP-9 production) and physical contraction. Altogether, this study confirms vascular cells' functional behavior is crucially regulated by synergistic effect of their alignment and cell-substrate interfacial properties.

摘要

血管细胞的功能障碍与心血管疾病相关。最近的文献清楚地呈现了有关细胞微环境及其功能的证据。在设计功能性组织工程血管移植物时,了解细胞与材料的相互作用至关重要。天然丝生物聚合物已在各种组织工程应用中显示出潜力。在本研究中,我们旨在探索丝膜可变的固有物理化学性质和拓扑结构对血管细胞功能行为的组合效应。来自不同品种(桑蚕丝,BM;和非桑蚕丝,AA)的丝蛋白具有独特的固有氨基酸组成,这导致了可变的表面性质(粗糙度、润湿性、化学性质和机械刚度)。此外,我们对丝膜表面进行了工程处理,并打印了微槽图案以诱导细胞单向排列,模仿其天然形态。图案化的丝膜诱导了猪血管细胞的单向排列。无论排列情况如何,内皮细胞(ECs)在AA膜上增殖良好;然而,它抑制了内源性血管舒张剂一氧化氮(NO)的产生。平滑肌细胞(SMCs)的单向排列促进了收缩表型,表现为细胞增殖最少、静止(G0)期细胞增加以及收缩基因上调。适度亲水的平坦BM膜诱导细胞聚集,并增强了收缩基因(对于SMCs)和内皮型一氧化氮合酶eNOS(对于ECs)的表达。功能研究进一步证实,SMCs的排列改善了胶原蛋白的产生、重塑能力(基质金属蛋白酶MMP - 2和MMP - 9的产生)以及物理收缩。总之,本研究证实血管细胞的功能行为受到其排列和细胞 - 底物界面性质协同作用的关键调节。

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