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Stem Cell-Based Strategies to Study, Prevent, and Treat Cartilage Injury and Osteoarthritis.

机译:基于干细胞的策略来研究,预防和治疗软骨损伤和骨关节炎。

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摘要

Articular cartilage is a smooth connective tissue that covers the ends of bones and protects joints from wear. Cartilage has a poor healing capacity, and the lack of treatment options motivates the development of tissue engineering strategies. The widespread cartilage degeneration associated with osteoarthritis (OA) is dramatically accelerated by joint injury, but the defined initiating event presents a therapeutic window for preventive treatments. In vitro model systems allow investigation of OA risk factors and screening of potential therapeutics. This dissertation develops stem-cell based strategies to 1) treat cartilage injury and OA using tissue-engineered cartilage, 2) prevent the development of OA by delivering stem cells to the joint after injury, and 3) study cartilage by establishing systems to model genetic and environmental contributors to OA.;Adipose-derived stem cells (ASCs) and bone marrow-derived mesenchymal stem cells (MSCs) are promising human adult cell sources for cartilage tissue engineering, but require distinct chondrogenic conditions. As compared to ASCs, MSCs demonstrated enhanced chondrogenesis in both alginate beads and cartilage-derived matrix scaffolds.;We hypothesized that MSC therapy would prevent post-traumatic arthritis (PTA) by altering the balance of inflammation and regeneration. Highly purified MSCs (CD45-TER119-PDGFR&agr;+Sca-1 +) rapidly expanded under hypoxic conditions. Unexpectedly, MSCs from control C57BL/6 (B6) mice proliferated and differentiated more than MSCs from MRL/MpJ (MRL) "superhealer" mice. We injected B6 or MRL MSCs into mouse knees immediately after fracture, and MSCs of either strain were sufficient to prevent PTA.;Genetically reprogramming adult cells into induced pluripotent stem cells (iPSCs) generates large numbers of patient-matched cells with chondrogenic potential for therapy and cartilage modeling. We produced murine iPSC-derived cartilage constructs with a multi-phase approach involving micromass culture with bone morphogenetic protein-4, flow cytometry cell sorting of chondrocyte-like cells, monolayer expansion, and pellet culture with transforming growth factor-beta 3. Successful differentiation was confirmed by increased chondrogenic gene expression, robust synthesis of glycosaminoglycans and type II collagen, and the repair of an in vitro cartilage defect.;The diverse applications pursued in this research illustrate the power of stem cells to deepen the understanding of cartilage and guide the development of therapies to prevent and treat cartilage injury and OA.
机译:关节软骨是平滑的结缔组织,覆盖骨骼的末端并保护关节免受磨损。软骨具有较差的愈合能力,并且缺乏治疗选择激励了组织工程策略的发展。与骨关节炎(OA)相关的广泛的软骨变性可通过关节损伤而明显加速,但明确的起始事件为预防性治疗提供了治疗窗口。体外模型系统可以研究OA危险因素并筛选潜在的治疗方法。本论文开发了基于干细胞的策略,以:1)使用组织工程软骨治疗软骨损伤和OA,2)通过在损伤后将干细胞递送至关节来防止OA的发展,以及3)通过建立系统模型来研究软骨脂肪来源的干细胞(ASC)和骨髓来源的间充质干细胞(MSC)是有望用于软骨组织工程的人类成年细胞来源,但需要独特的软骨形成条件。与ASC相比,MSC在藻酸盐珠和软骨衍生的基质支架中均显示出增强的软骨形成。我们假设MSC治疗可通过改变炎症和再生的平衡来预防创伤后关节炎(PTA)。高度纯化的MSC(CD45-TER119-PDGFR&agr; + Sca-1 +)在缺氧条件下迅速扩增。出乎意料的是,来自对照C57BL / 6(B6)小鼠的MSC的增殖和分化程度比来自MRL / MpJ(MRL)“超愈”小鼠的MSC分化更多。我们在骨折后立即将B6或MRL MSCs注射到小鼠膝盖上,并且任一菌株的MSC都足以预防PTA .;将成年细胞基因重编程为诱导多能干细胞(iPSC)会产生大量患者匹配的具有软骨病治疗潜力的细胞和软骨建模。我们用多阶段方法生产了鼠iPSC衍生的软骨构建体,涉及到用骨形态发生蛋白4进行微团培养,软骨细胞样细胞的流式细胞仪分选,单层扩增和具有转化生长因子β3的沉淀培养。成功的分化软骨形成基因的表达增加,糖胺聚糖和II型胶原蛋白的强健合成以及体外软骨缺损的修复证实了这一点;该研究的多种应用说明了干细胞加深对软骨的理解并指导软骨的功能。开发预防和治疗软骨损伤和骨关节炎的疗法。

著录项

  • 作者

    Diekman, Brian O'Callaghan.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Engineering Biomedical.;Biology Cell.;Health Sciences Medicine and Surgery.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 220 p.
  • 总页数 220
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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