首页> 外文期刊>Biomaterials Science >CaO_2/gelatin oxygen slow-releasing microspheres facilitate tissue engineering efficiency for the osteonecrosis of femoral head by enhancing the angiogenesis and survival of grafted bone marrow mesenchymal stem cells
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CaO_2/gelatin oxygen slow-releasing microspheres facilitate tissue engineering efficiency for the osteonecrosis of femoral head by enhancing the angiogenesis and survival of grafted bone marrow mesenchymal stem cells

机译:CaO_2 /明胶氧气缓慢释放微球通过增强接枝骨髓间充质干细胞的血管生成和存活来促进股骨头骨折的组织工程效率

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摘要

The osteonecrosis of femoral head (ONFH), a common refractory disease, is still not fully understood today. Hypoxia caused by ischemia is not only an important pathogenic factor but also a critical challenge for the survival of seed cells in the tissue engineering therapy of ONFH. To explore an efficient strategy to treat ONFH by targeting hypoxia, newly designed CaO_2/gelatin microspheres were composited with 3D printed polycaprolactone/nano-hydroxyapatite (PCL/nHA) porous scaffold, sodium alginate/gelatin hydrogel, and bone marrow mesenchymal stem cells (BMSCs) to develop a novel tissue engineering scaffold and then transplanted into the core depression area of the ONFH rabbit model. The current data demonstrated that CaO_2/gelatin microspheres can constantly release oxygen for 19 days. In vitro assays with BMSCs illustrated that scaffolds have high biocompatibility and are favorable for cell proliferation in extreme hypoxia (1% O_2). The in vivo study demonstrated that the transplanted scaffold with oxygen-generating microspheres significantly enhanced the osteogenic and angiogenic effects compared to the scaffold without microspheres. Further assessments revealed that microspheres in the scaffold can reduce the local cell apoptosis and enhance the survival of grafted cells in the host. Collectively, the present study developed a novel oxygen slow-releasing composite scaffold, which can facilitate tissue engineering efficiency for treating the osteonecrosis of the femoral head by enhancing the angiogenesis and survival of grafted stem cells.
机译:股骨头骨折(ON​​FH),常见的难治性疾病,今天仍然没有完全理解。缺氧引起的缺血不仅是一个重要的致病因素,而且是在ONFH的组织工程治疗中种子细胞存活的关键挑战。为了探讨通过靶向缺氧治疗ONFH的有效策略,新设计的CAO_2 /明胶微球与3D印刷聚碳酮/纳米 - 羟基磷灰石(PCL / NHA)多孔支架,藻酸钠/明胶水凝胶和骨髓间充质干细胞(BMSCs )开发一种新型组织工程支架,然后移植到ONFH兔模型的核心凹陷区域中。目前的数据表明CaO_2 /明胶微球可以不断释放氧气19天。用BMSC的体外测定说明了支架具有高生物相容性,并且有利于极端缺氧(1%O_2)中的细胞增殖。体内研究表明,与没有微球的支架相比,具有氧生成微球的移植支架显着提高了成骨和血管生成效果。进一步的评估表明,支架中的微球可以减少局部细胞凋亡并增强宿主中接枝细胞的存活。集体,本研究开发了一种新型氧气缓慢释放复合支架,其可以通过增强接枝干细胞的血管生成和存活来促进组织工程效率来治疗股骨头的骨折。

著录项

  • 来源
    《Biomaterials Science》 |2021年第8期|共14页
  • 作者单位

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Ultrasound Medicine Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

    Department of Spinal Surgery Orthopedic Medical Center Zhujiang Hospital Southern Medical University Guangzhou 510280 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计量学;
  • 关键词

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