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Impact of substrate stiffness on vascular smooth muscle cell behavior: A comparison of uniform and gradient substrate stiffness.

机译:基质刚度对血管平滑肌细胞行为的影响:均匀和梯度基质刚度的比较。

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摘要

The mechanical compliance of underlying substrata has been emerging as an important environmental cue that influences various cell behavior such as cell morphology and motility. Local variations in tissue mechanical properties have been reported in vivo, for example, at sites of angiogenesis or atherosclerosis; therefore variation in extracellular matrix (ECM) stiffness may be an important signal that guides cell behavior in vivo. Recently, in vitro studies have shown that fibroblasts and vascular smooth muscle cells (VSMCs) prefer to migrate from relatively compliant to adjacent relatively stiffer substrate. However, this phenomenon, termed durotaxis, has not yet been rigorously demonstrated. This requires a systematic comparison of cell behavior on substrata with uniform and varying gradient stiffness. The determination of quantitative relationships between scaffold properties and cell response would not only provide insight to normal and pathologic processes but may also aid in the design of scaffolds for tissue engineering applications.; To quantify the dependence of VSMC morphology and motility on substrates with uniform and gradient stiffness, we used polyacrylamide (PAAM) hydrogels as our model system. We developed a novel system to generate well-defined stiffness gradients by integrating microfluidics technology and photopolymerization of acrylamide and measured the stiffness of the gradient gels using atomic force microscopy (AFM).; We investigated VSMC morphology and motility on substrates with uniform stiffness ranging from 5 to 250 kPa and found that cell spreading and elongation (polarization) increases with stiffness. Using a random cell walk model, we found that cell motility also increased with substrate stiffness. We investigated stiffness gradients ranging from 0 to 6 kPa/100 mum and found that VSMC morphology was not significantly different from that on uniform stiffness substrates. However, significant durotaxis was observed on the gradient substrata. We quantified durotaxis by determining the McClutcheon-Othmer tactic index (used previously for chemotaxis) and found that durotactic index increases with the magnitude of the gradient. Additionally, we also assessed VSMC durotaxis morphologically by examining cell orientation with respect to the gradient direction and further evaluated the dependence of durotaxis on the gradient. The knowledge gained from this study, combined with further investigations into molecular mechanisms and dynamics underlying durotaxis, may aid in the design of new therapeutic strategies and vascular graft design to control VSMC migration.
机译:底层基质的机械顺应性已经成为影响各种细胞行为(如细胞形态和运动性)的重要环境提示。在体内,例如在血管生成或动脉粥样硬化的部位,已经报道了组织机械性能的局部变化。因此,细胞外基质(ECM)刚度的变化可能是指导体内细胞行为的重要信号。最近,体外研究表明,成纤维细胞和血管平滑肌细胞(VSMC)倾向于从相对顺应性迁移到相邻的相对较硬的基质。但是,还没有严格证明这种现象,称为durotaxis。这需要系统地比较具有均匀且变化的梯度刚度的基质上的细胞行为。确定支架性质和细胞反应之间的定量关系不仅可以提供对正常和病理过程的了解,还可以帮助设计组织工程应用的支架。为了量化VSMC形态和动力对具有均匀和梯度刚度的基材的依赖性,我们使用聚丙烯酰胺(PAAM)水凝胶作为我们的模型系统。我们开发了一种新颖的系统,通过集成微流体技术和丙烯酰胺的光聚合反应来生成明确的刚度梯度,并使用原子力显微镜(AFM)测量了梯度凝胶的刚度。我们研究了5到250 kPa均匀刚度的基底上的VSMC形态和运动性,发现细胞扩散和伸长(极化)随刚度增加而增加。使用随机细胞游走模型,我们发现细胞运动性也随着底物刚度而增加。我们研究了从0到6 kPa / 100 mum的刚度梯度,发现VSMC形态与均匀刚度基板上的形态没有显着差异。但是,在梯度层上观察到了显着的durotaxis。我们通过确定McClutcheon-Othmer战术指数(以前用于趋化性)来量化durotaxis,并发现durotactic指数随梯度的大小而增加。此外,我们还通过检查细胞相对于梯度方向的方向在形态上评估了VSMC的durotaxis,并进一步评估了durotaxis对梯度的依赖性。从这项研究中获得的知识,再加上对durotaxis的分子机制和动力学的进一步研究,可能有助于设计新的治疗策略和控制VSMC迁移的血管移植设计。

著录项

  • 作者

    Kim, Sooyoung Karen.;

  • 作者单位

    Boston University.;

  • 授予单位 Boston University.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 87 p.
  • 总页数 87
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

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