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Jagged1选择性Notch3信号通路对三维共培养体系中血管平滑肌细胞表型的调控

Regulation of vascular smooth muscle cell phenotype in three-dimensional coculture system by Jagged1-selective Notch3 signaling.

作者信息

Bhattacharyya Aparna, Lin Shigang, Sandig Martin, Mequanint Kibret

机构信息

1 Graduate Program of Biomedical Engineering, The University of Western Ontario , London, Canada .

出版信息

Tissue Eng Part A. 2014 Apr;20(7-8):1175-87. doi: 10.1089/ten.TEA.2013.0268. Epub 2014 Feb 10.

Abstract

The modulation of vascular smooth muscle cell (VSMC) phenotype is an essential element to fabricate engineered conduits of clinical relevance. In vivo, owing to their close proximity, endothelial cells (ECs) play a role in VSMC phenotype switching. Although considerable progress has been made in vascular tissue engineering, significant knowledge gaps exist on how the contractile VSMC phenotype is induced at the conclusion of the tissue fabrication process. The objectives of this study were as follows: (1) to establish ligand presentation modes on transcriptional activation of VSMC-specific genes, (2) to develop a three-dimensional (3D) coculture model using human coronary artery smooth muscle cells (HCASMCs) and human coronary artery endothelial cells (HCAECs) on porous synthetic scaffolds and, (3) to investigate EC-mediated Notch signaling in 3D cultures and the induction of the HCASMC contractile phenotype. Whereas transcriptional activation of VSMC-specific genes was not induced by presenting soluble Jagged1 and Jagged1 bound to protein G beads, a direct link between HCAEC-bound Jagged1 and HCASMC differentiation genes was observed. Our 3D culture results showed that HCASMCs seeded to scaffolds and cultured for up to 16 days readily attached, infiltrated the scaffold, proliferated, and formed dense confluent layers. HCAECs, seeded on top of an HCASMC layer, formed a distinct, separate monolayer with cell-type partitioning, suggesting that HCAEC growth was contact inhibited. While we observed EC monolayer formation with 200,000 HCAECs/scaffold, seeding 400,000 HCAECs/scaffold revealed the formation of cord-like structures akin to angiogenesis. Western blot analyses showed that 3D coculture induced an upregulation of Notch3 receptor in HCASMCs and its ligand Jagged1 in HCAECs. This was accompanied by a corresponding induction of the contractile HCASMC phenotype as demonstrated by increased expression of smooth muscle-α-actin (SM-α-actin) and calponin. Knockdown of Jagged1 with siRNA showed a reduction in SM-α-actin and calponin in cocultures, identifying a link between Jagged1 and the expression of contractile proteins in 3D cocultures. We therefore conclude that the Notch3 signaling pathway is an important regulator of VSMC phenotype and could be targeted when fabricating engineered vascular tissues.

摘要

血管平滑肌细胞(VSMC)表型的调节是制造具有临床相关性的工程管道的关键要素。在体内,由于内皮细胞(EC)与VSMC相邻,它们在VSMC表型转换中发挥作用。尽管血管组织工程已取得显著进展,但在组织制造过程结束时如何诱导收缩性VSMC表型方面仍存在重大知识空白。本研究的目的如下:(1)确定配体呈现模式对VSMC特异性基因转录激活的影响;(2)在多孔合成支架上使用人冠状动脉平滑肌细胞(HCASMC)和人冠状动脉内皮细胞(HCAEC)建立三维(3D)共培养模型;(3)研究3D培养中EC介导的Notch信号传导以及HCASMC收缩表型的诱导。虽然可溶性Jagged1和与蛋白G珠结合的Jagged1的呈现未诱导VSMC特异性基因的转录激活,但观察到HCAEC结合的Jagged1与HCASMC分化基因之间存在直接联系。我们的3D培养结果表明,接种到支架上并培养长达16天的HCASMC很容易附着、渗透到支架中、增殖并形成致密的汇合层。接种在HCASMC层顶部的HCAEC形成了具有细胞类型分隔的独特、独立的单层,表明HCAEC的生长受到接触抑制。当我们在每个支架接种200,000个HCAEC时观察到EC单层形成,而每个支架接种400,000个HCAEC则显示出类似于血管生成的索状结构的形成。蛋白质印迹分析表明,3D共培养诱导HCASMC中Notch3受体及其配体Jagged1在HCAEC中的上调。这伴随着收缩性HCASMC表型的相应诱导,表现为平滑肌α-肌动蛋白(SM-α-肌动蛋白)和钙调蛋白表达增加。用小干扰RNA敲低Jagged1显示共培养中SM-α-肌动蛋白和钙调蛋白减少,确定了Jagged1与3D共培养中收缩蛋白表达之间的联系。因此,我们得出结论,Notch3信号通路是VSMC表型的重要调节因子,在制造工程血管组织时可作为靶点。

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