首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >Optical bioluminescence imaging of human ES cell progeny in the rodent CNS.
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Optical bioluminescence imaging of human ES cell progeny in the rodent CNS.

机译:啮齿动物CNS中人类ES细胞子代的光学生物发光成像。

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摘要

Pre-clinical efforts of grafting human embryonic stem cell (hESC)-derived neural precursors have been hampered by problems ranging from graft rejection to overgrowth and tumor formation. The ability to detect such potential complications sensitively and reliably in clinically relevant contexts will rest upon the implementation of suitable non-invasive imaging technologies for continuously probing graft survival, proliferation, and migration. Neural precursors were transduced ex vivo using a lentiviral-mediated gene delivery system expressing firefly D-luciferase, under the control of a cytomegalovirus promoter. Transduced cells revealed no loss of cellular morphology, proliferative capacity, or neural phenotype in vitro. As a novel approach to monitoring the fate of human grafts within the living brain, we adapted optical bioluminescence imaging to assess long-term graft viability in immunodeficient mouse models transplanted with genetically engineered human neural precursor cells. We additionally applied this technology to immunocompetent models for detecting and characterizing the time course of graft rejection. Using this strategy, we define statistically relevant imaging criteria that can predict graft rejection or overgrowth. In conclusion, our data suggest that optical bioluminescence imaging can serve as an essential tool for the development of hESC-based grafting strategies in the CNS.
机译:从移植排斥到过度生长和肿瘤形成等问题都阻碍了移植人类胚胎干细胞(hESC)衍生的神经前体的临床前工作。在临床相关情况下灵敏可靠地检测此类潜在并发症的能力将取决于适当的非侵入性成像技术的实施,以持续探测移植物的存活,增殖和迁移。在巨细胞病毒启动子的控制下,使用表达萤火虫D-荧光素酶的慢病毒介导的基因递送系统离体转导神经前体。转导的细胞在体外没有显示出细胞形态,增殖能力或神经表型的丧失。作为监视活体大脑中人类移植物命运的一种新方法,我们采用了光学生物发光成像技术来评估移植有基因工程人类神经前体细胞的免疫缺陷小鼠模型中的长期移植物活力。我们还将该技术应用于免疫功能模型,以检测和表征移植排斥的时间过程。使用这种策略,我们定义了可以预测移植物排斥或过度生长的统计学相关影像学标准。总之,我们的数据表明光学生物发光成像可以作为中枢神经系统中基于hESC的嫁接策略发展的重要工具。

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