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Cellular interactions with tissue-engineered microenvironments and nanoparticles.

机译:细胞与组织工程微环境和纳米粒子的相互作用。

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摘要

Tissue-engineered hydrogels composed of intermolecularlly crosslinked hyaluronan (HA-DTPH) and fibronectin functional domains (FNfds) were applied as a physiological relevant ECM mimic with controlled mechanical and biochemical properties. Cellular interactions with this tissue-engineered environment, especially physical interactions (cellular traction forces), were quantitatively measured by using the digital image speckle correlation (DISC) technique and finite element method (FEM). By correlating with other cell functions such as cell morphology and migration, a comprehensive structure-function relationship between cells and their environments was identified. Furthermore, spatiotemporal redistribution of cellular traction stresses was time-lapse measured during cell migration to better understand the dynamics of cell mobility. The results suggest that the reinforcement of the traction stresses around the nucleus, as well as the relaxation of nuclear deformation, are critical steps during cell migration, serving as a speed regulator, which must be considered in any dynamic molecular reconstruction model of tissue cell migration. Besides single cell migration, en masse cell migration was studied by using agarose droplet migration assay. Cell density was demonstrated to be another important parameter to influence cell behaviors besides substrate properties. Findings from these studies will provide fundamental design criteria to develop novel and effective tissue-engineered constructs.;Cellular interactions with rutile and anatase TiO2 nanoparticles were also studied. These particles can penetrate easily through the cell membrane and impair cell function, with the latter being more damaging. The exposure to nanoparticles was found to decrease cell area, cell proliferation, motility, and contractility. To prevent this, a dense grafted polymer brush coating was applied onto the nanoparticle surface. These modified nanoparticles failed to adhere to and penetrate through the cell membrane. As a consequence, the coating effectively decreased reactive oxygen species (ROS) formation and protected the cells. Considering the broad applications of these nanoparticles in personal health care products, the functionalized polymer coating will likely play an important role in protecting cells and tissue from damage.
机译:由分子间交联的透明质酸(HA-DTPH)和纤连蛋白功能域(FNfds)组成的组织工程水凝胶被用作生理相关的ECM模拟物,具有受控的机械和生化特性。通过使用数字图像斑点相关(DISC)技术和有限元方法(FEM)定量测量了与这种组织工程环境之间的细胞相互作用,特别是物理相互作用(细胞牵引力)。通过与其他细胞功能(如细胞形态和迁移)相关联,确定了细胞与其环境之间的全面结构-功能关系。此外,在细胞迁移过程中测量了细胞牵引应力的时空重分布,以更好地了解细胞迁移的动态。结果表明,增强细胞核周围的牵引力以及放松核变形是细胞迁移过程中的关键步骤,起着速度调节剂的作用,在任何组织细胞迁移的动态分子重建模型中都必须考虑这一点。 。除了单细胞迁移外,还通过琼脂糖液滴迁移分析研究了大规模细胞迁移。事实证明,细胞密度是影响细胞行为的另一个重要参数,除了底物特性。这些研究的结果将为开发新颖有效的组织工程构建体提供基本的设计标准。;还研究了金红石型和锐钛矿型TiO2纳米粒子的细胞相互作用。这些颗粒很容易穿透细胞膜并损害细胞功能,后者损害更大。发现暴露于纳米颗粒减少了细胞面积,细胞增殖,运动性和收缩性。为了防止这种情况,将致密的接枝聚合物刷涂层涂覆在纳米颗粒表面上。这些改性的纳米颗粒不能粘附并穿透细胞膜。结果,该涂层有效地减少了活性氧(ROS)的形成并保护了细胞。考虑到这些纳米颗粒在个人保健产品中的广泛应用,功能化的聚合物涂层将可能在保护细胞和组织免受损害中发挥重要作用。

著录项

  • 作者

    Pan, Zhi.;

  • 作者单位

    State University of New York at Stony Brook.;

  • 授予单位 State University of New York at Stony Brook.;
  • 学科 Engineering Biomedical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 200 p.
  • 总页数 200
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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