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首页> 外文期刊>Biomaterials >A biodegradable microvessel scaffold as a framework to enable vascular support of engineered tissues
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A biodegradable microvessel scaffold as a framework to enable vascular support of engineered tissues

机译:可生物降解的微型脚轮脚手架作为框架,以实现工程组织的血管支持

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摘要

A biodegradable microvessel scaffold comprised of distinct parenchymal and vascular compartments separated by a permeable membrane interface was conceptualized, fabricated, cellularized, and implanted. The device was designed with perfusable microfluidic channels on the order of 100μm to mimic small blood vessels, and high interfacial area to an adjacent parenchymal space to enable transport between the compartments. Poly(glycerol sebacate) (PGS) elastomer was used to construct the microvessel framework, and various assembly methods were evaluated to ensure robust mechanical integrity. Invitro studies demonstrated the differentiation of human skeletal muscle cells cultured in the parenchymal space, a 90% reduction in muscle cell viability due to trans-membrane transport of a myotoxic drug from the perfusate, and microvessel seeding with human endothelial cells. Invivo studies of scaffolds implanted subcutaneously and intraperitoneally, without or with exogenous cells, into nude rats demonstrated biodegradation of the membrane interface and host blood cell infiltration of the microvessels. This modular, implantable scaffold could serve as a basis for building tissue constructs of increasing scale and clinical relevance.
机译:由可渗透的膜界面分离的明显的实质和血管室组成的可生物降解的微型胶囊支架被概念化,制造,细胞化和植入。该器件设计有灌注的微流体通道,大约为100μm以模拟小血管,以及高界面区域到相邻的实质空间,以实现隔室之间的运输。聚(甘油癸二酸盐)(PGS)弹性体用于构建微血管框架,并评估各种组装方法以确保稳健的机械完整性。 invitro的研究表明,由于来自灌注酸盐的肌毒性药物的跨膜输送,与人内皮细胞的微血管播种,患者在实质间距中培养的人骨骼肌细胞的分化,肌胞细胞活力的90%降低,以及用人内皮细胞进行微血管播种。对皮下和腹膜内植入的支架的Invivo研究植入裸鼠中的膜界面和宿主血细胞浸润的生物降解。这种模块化可植入的支架可以作为构建增加规模和临床相关性的组织构建的基础。

著录项

  • 来源
    《Biomaterials》 |2013年第38期|共9页
  • 作者单位

    Harvard-MIT Division of Health Sciences and Technology David H. Koch Institute for Integrative;

    Harvard-MIT Division of Health Sciences and Technology David H. Koch Institute for Integrative;

    Harvard-MIT Division of Health Sciences and Technology David H. Koch Institute for Integrative;

    Microsystems Development Group Charles Stark Draper Laboratory Cambridge MA 02139 United States;

    Harvard-MIT Division of Health Sciences and Technology David H. Koch Institute for Integrative;

    Microsystems Development Group Charles Stark Draper Laboratory Cambridge MA 02139 United States;

    Harvard-MIT Division of Health Sciences and Technology David H. Koch Institute for Integrative;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

    Microfabrication; Poly(glycerol sebacate); Scaffold; Skeletal muscle cells; Tissue engineering; Vascularization;

    机译:微型制备;聚(甘油癸二酸盐);支架;骨骼肌细胞;组织工程;血管化;

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