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首页> 外文期刊>Tissue engineering, Part C. Methods >Compartmental hollow fiber capillary membrane-based bioreactor technology for in vitro studies on red blood cell lineage direction of hematopoietic stem cells
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Compartmental hollow fiber capillary membrane-based bioreactor technology for in vitro studies on red blood cell lineage direction of hematopoietic stem cells

机译:基于隔间中空纤维毛细管的生物反应器技术,用于造血干细胞红细胞谱系方向的体外研究

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摘要

Continuous production of red blood cells (RBCs) in an automated closed culture system using hematopoietic stem cell (HSC) progenitor cell populations is of interest for clinical application because of the high demand for blood transfusions. Previously, we introduced a four-compartment bioreactor that consisted of two bundles of hollow fiber microfiltration membranes for transport of culture medium (forming two medium compartments), interwoven with one bundle of hollow fiber membranes for transport of oxygen (O 2), carbon dioxide (CO 2), and other gases (forming one gas compartment). Small-scale prototypes were developed of the three-dimensional (3D) perfusion cell culture systems, which enable convection-based mass transfer and integral oxygenation in the cell compartment. CD34 + HSC were isolated from human cord blood units using a magnetic separation procedure. Cells were inoculated into 2-or 8-mL scaled-down versions of the previously designed 800-mL cell compartment devices and perfused with erythrocyte proliferation and differentiation medium. First, using the small-scale 2-mL analytical scale bioreactor, with an initial seeding density of 800,000 cells/mL, we demonstrated approximately 100-fold cell expansion and differentiation after 7 days of culture. An 8-mL laboratory-scale bioreactor was then used to show pseudocontinuous production by intermediately harvesting cells. Subsequently, we were able to use a model to demonstrate semicontinuous production with up to 14,288-fold expansion using seeding densities of 800,000 cells/mL. The down-scaled culture technology allows for expansion of CD34 + cells and stimulating these progenitors towards RBC lineage, expressing approximately 40% CD235 + and enucleation. The 3D perfusion technology provides an innovative tool for studies on RBC production, which is scalable.
机译:使用造血干细胞(HSC)祖细胞群的自动封闭式培养系统中的连续生产红细胞(HSC)祖细胞群对临床应用感兴趣,因为对输血的需求很高。以前,我们介绍了一种四室生物反应器,其由两套中空纤维微滤膜组成,用于运输培养基(形成两个中间隔室),与一束中空纤维膜交织,用于运输氧(O 2),二氧化碳(CO 2)和其他气体(形成一个气体隔室)。开发了小型原型的三维(3D)灌注细胞培养系统,其使基于对流的传质和细胞室中的整体氧合。使用磁性分离程序从人脐带血单位分离CD34 + HSC。将细胞接种到先前设计的800mL细胞室装置的2-或8ml缩小版本中,并用红细胞增殖和分化介质灌注。首先,使用小规模的2mL分析尺度生物反应器,初始播种密度为800,000个细胞/ ml,我们在培养7天后显示了大约100倍的细胞膨胀和分化。然后使用中间收获细胞来显示8ml实验室级生物反应器来显示伪连续的产生。随后,我们能够使用模型来展示半连续生产,使用800,000个细胞/ ml的播种密度膨胀高达14,288倍。下缩放的培养技术允许扩增CD34 +细胞并刺激这些祖细胞朝向RBC谱系,表达约40%CD235 +和enucleation。 3D灌注技术为RBC生产提供了一种创新工具,可扩展。

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    Departments of Surgery McGowan Institute for Regenerative Medicine University of Pittsburgh 3025;

    Departments of Surgery McGowan Institute for Regenerative Medicine University of Pittsburgh 3025;

    Departments of Surgery McGowan Institute for Regenerative Medicine University of Pittsburgh 3025;

    Departments of Surgery McGowan Institute for Regenerative Medicine University of Pittsburgh 3025;

    Celgene Cellular Therapeutics Stem Cell Research Group Warren NJ United States;

    Celgene Cellular Therapeutics Stem Cell Research Group Warren NJ United States;

    Celgene Cellular Therapeutics Stem Cell Research Group Warren NJ United States;

    Celgene Cellular Therapeutics Stem Cell Research Group Warren NJ United States;

    Division of Experimental Surgery Berlin-Brandenburg Center for Regenerative Therapies (BCRT);

    Departments of Surgery McGowan Institute for Regenerative Medicine University of Pittsburgh 3025;

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  • 正文语种 eng
  • 中图分类 人体形态学;
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