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Decellularized porcine myocardium as a scaffold for cardiac tissue engineering.

机译:脱细胞猪心肌作为心脏组织工程的支架。

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摘要

Myocardial infarction (MI) and heart failure are leading causes of mortality globally. Recently, cardiac tissue engineering has become an attractive option for MI treatment due to the following advantages: it might provide optimal tissue performance maintained by viable transplanted cells, and might also stimulate the formation of vasculature supplying oxygen and nutrients in the patched region. However, fabrication of a thick viable cardiac patch with 3D scaffolds that are thoroughly recellularized with desired cells remains a challenge.;We hypothesize that the decellularized porcine myocardium scaffold can preserve natural extracellular matrix (ECM) structure, cardiomyocyte lacunae, mechanical properties, and vasculature templates that are able to facilitate stem cell reseeding, proliferation, cardiomyocyte differentiation, and angiogenesis. In this dissertation, we have (i) assessed the potential of the decellularized porcine myocardium as a scaffold for thick cardiac patch tissue engineering; (ii) thoroughly characterized the structural and biomechanical properties of the myocardial ECM; (iii) designed and built a novel bioreactor that could provide coordinated mechanical and electrical stimulations, and (iv) evaluated the efficiency of the multi-stimulations on the development of a cardiac tissue construct.;An optimized decellularization protocol has been identified to obtain the acellular myocardial scaffold that preserves subtle ECM composition and ultrastructure. We recellularized the acellular scaffold with bone marrow mononuclear cells using a rotating bioreactor and observed successful recellularization with good cell viability, proliferation, and differentiation in a 2-week culture time. Furthermore, we have successfully built a novel bioreactor that is able to provide coordinated mechanical and electrical stimulations for facilitating stem cell differentiation and tissue construct development. We found that cardiomyocyte differentiation and tissue remodeling were more effectively and efficiently promoted with the coordinated simulations, evidenced by good cell viability, proliferation, differentiation, positive tissue remodeling, and a trend of angiogenesis in a short period of time (2–4 days).;The clinical product that we envision will benefit from the natural architecture of myocardial ECM, which has the potential to promote stem cell differentiation, cardiac regeneration, and angiogenesis. The hopes are that our novel approach will ultimately impact thousands of patients who have suffered significant damage from a prior myocardial infarction.
机译:心肌梗塞(MI)和心力衰竭是全球范围内导致死亡的主要原因。最近,由于以下优点,心脏组织工程已成为MI治疗的诱人选择:它可以提供由存活的移植细胞维持的最佳组织性能,并且还可以刺激修补区域中供应氧气和营养的脉管系统的形成。然而,用3D支架制作的厚实可行的心脏贴片要用所需的细胞彻底重新细胞化仍然是一个挑战。;我们假设去细胞的猪心肌支架可以保留天然的细胞外基质(ECM)结构,心肌腔,机械特性和脉管系统能够促进干细胞重播,增殖,心肌细胞分化和血管生成的模板。在本文中,我们(i)评估了脱细胞猪心肌作为厚心脏膜片组织工程支架的潜力; (ii)彻底表征了心肌ECM的结构和生物力学特性; (iii)设计和建造了新型生物反应器,可以提供协调的机械和电刺激,并且(iv)评估了多种刺激对心脏组织构建体发育的效率。保留微妙的ECM成分和超微结构的无细胞心肌支架。我们使用旋转的生物反应器,用骨髓单核细胞对脱细胞支架进行了细胞重组,并在2周的培养时间内观察到成功的细胞重组,并具有良好的细胞活力,增殖能力和分化能力。此外,我们已成功构建了一种新型生物反应器,该反应器能够提供协调的机械和电刺激,以促进干细胞分化和组织构建体发育。我们发现,通过协同模拟,可以更有效地促进心肌细胞的分化和组织重塑,这在短时间内(2-4天)具有良好的细胞活力,增殖,分化,阳性组织重塑和血管生成趋势得到了证明。我们设想的临床产品将受益于心肌ECM的天然结构,该结构具有促进干细胞分化,心脏再生和血管生成的潜力。希望我们的新方法将最终影响成千上万因先前的心肌梗塞而遭受重大损害的患者。

著录项

  • 作者

    Wang, Bo.;

  • 作者单位

    Mississippi State University.;

  • 授予单位 Mississippi State University.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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