...
首页> 外文期刊>Tissue engineering >Valvular Endothelial Cells Regulate the Phenotype of Interstitial Cells in Co-culture: Effects of Steady Shear Stress
【24h】

Valvular Endothelial Cells Regulate the Phenotype of Interstitial Cells in Co-culture: Effects of Steady Shear Stress

机译:瓣膜内皮细胞调节共培养间质细胞的表型:稳定的剪应力的影响。

获取原文
获取原文并翻译 | 示例

摘要

Valvular endothelial cells interact with interstitial cells in a complex hemodynamic and mechanical environment to maintain leaflet tissue integrity. The precise roles of each cell type are difficult to ascertain in a controlled manner in vivo. The objective of this study was to develop a three-dimensional aortic valve leaflet model, comprised of valvular endothelium and interstitial cells, and determine the cellular responses to imposed lumenal fluid flow. Two leaflet models were created using type I collagen hydrogels. Model 1 contained 1 million/mL porcine aortic valve interstitial cells (PAVICs). Model 2 added a seeding of the lumenal surface of Model 1 with approximately 50,000/cm2 porcine aortic valve endothelial cells (PAVECs). Both leaflet models were exposed to 20 dynes/cm2 steady shear for up to 96 h, with static constructs serving as controls. Endothelial cell alignment, matrix production, and cell phenotype were monitored. The results indicate that PAVECs align perpendicularly to flow similar to 2D culture. We report that PAVICs in model 1 express vimentin strongly and a-smooth-muscle actin (SMA) to a lesser extent, but SMA expression is increased by shear stress, particularly near the lumenal surface. Model 1 constructs increase in cell number, maintain protein levels, but lose glycosaminoglycans in response to shear. Co-culture with PAVECs (Model 2) modulates these responses in both static and flow environments, resulting in PA VIC phenotype that is more similar to the native condition. PAVECs stimulated a decrease in PA VIC proliferation, an increase in protein synthesis with shear stress, and reduced the loss of glycosaminoglycans with flow. Additionally, PAVECs stimulated PA VIC differentiation to a more quiescent phenotype, defined by reduced expression of SMA. These results suggest that valvular endothelial cells are necessary to properly regulate interstitial cell phenotype and matrix synthesis. Additionally, we show that tissue-engineered models can be used to discover and understand complex bio-mechanical relationships between cells that interact in vivo.
机译:瓣膜内皮细胞在复杂的血液动力学和机械环境中与间质细胞相互作用,以维持小叶组织的完整性。很难以受控方式在体内确定每种细胞类型的确切作用。这项研究的目的是建立一个由瓣膜内皮细胞和间质细胞组成的三维主动脉瓣小叶模型,并确定细胞对腔内液流的反应。使用I型胶原水凝胶创建了两个小叶模型。模型1包含1百万/ mL的猪主动脉瓣间质细胞(PAVIC)。模型2在模型1的腔表面添加了约50,000 / cm2的猪主动脉瓣内皮细胞(PAVEC)的种子。两种小叶模型均暴露于20达因/平方厘米的稳定剪切下长达96小时,其中静态构建体作为对照。监测内皮细胞比对,基质产生和细胞表型。结果表明,与2D培养相似,PAVEC与流垂直对齐。我们报告模型1中的PAVICs强烈表达波形蛋白和α-平滑肌肌动蛋白(SMA)程度较小,但剪切应力会增加SMA表达,尤其是在腔表面附近。模型1的构建体增加了细胞数量,维持了蛋白质水平,但由于剪切作用而失去了糖胺聚糖。与PAVEC的共培养(模型2)可在静态和流动环境中调节这些响应,从而导致PA VIC表型与自然条件更为相似。 PAVECs刺激了PA VIC增殖的减少,随着剪切应力增加了蛋白质的合成,并减少了糖胺聚糖随流量的损失。此外,PAVEC刺激PA VIC分化为更静止的表型,这由SMA表达降低所决定。这些结果表明,瓣膜内皮细胞对于适当调节间质细胞表型和基质合成是必需的。此外,我们表明组织工程模型可用于发现和了解体内相互作用的细胞之间的复杂生物力学关系。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号