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高通量、多重分析 3D 微组织悬液。

Multiplexed, high-throughput analysis of 3D microtissue suspensions.

机构信息

Massachusetts Institute of Technology, Cambridge, 02139, USA.

出版信息

Integr Biol (Camb). 2010 Oct;2(10):517-27. doi: 10.1039/c0ib00054j. Epub 2010 Sep 1.

Abstract

Three-dimensional (3D) tissue models have significantly improved our understanding of structure/function relationships and promise to lead to new advances in regenerative medicine. However, despite the expanding diversity of 3D tissue fabrication methods, approaches for functional assessment have been relatively limited. Here, we describe the fabrication of microtissue (μ-tissue) suspensions and their quantitative evaluation with techniques capable of analyzing large sample numbers and performing multiplexed parallel analysis. We applied this platform to 3D μ-tissues representing multiple stages of liver development and disease including: embryonic stem cells, bipotential hepatic progenitors, mature hepatocytes, and hepatoma cells photoencapsulated in polyethylene glycol hydrogels. Multiparametric μ-tissue cytometry enabled quantitation of fluorescent reporter expression within populations of intact μ-tissues (n≥ 10²-10³) and sorting-based enrichment of subsets for subsequent studies. Further, 3D μ-tissues could be implanted in vivo, respond to systemic stimuli, retrieved and quantitatively assessed. In order to facilitate multiplexed 'pooled' experimentation, fluorescent labeling strategies were developed and utilized to investigate the impact of μ-tissue composition and exposure to soluble factors. In particular, examination of drug/gene interactions on collections of 3D hepatoma μ-tissues indicated synergistic influence of doxorubicin and siRNA knockdown of the anti-apoptotic gene BCL-XL. Collectively, these studies highlight the broad utility of μ-tissue suspensions as an enabling approach for high n, populational analysis of 3D tissue biology in vitro and in vivo.

摘要

三维(3D)组织模型大大提高了我们对结构/功能关系的理解,并有望引领再生医学的新进展。然而,尽管 3D 组织制造方法的多样性不断扩大,但功能评估方法相对有限。在这里,我们描述了微组织(μ-组织)悬浮液的制造及其与能够分析大量样本数量并进行多重平行分析的技术的定量评估。我们将该平台应用于代表肝发育和疾病多个阶段的 3D μ-组织,包括:胚胎干细胞、双潜能肝祖细胞、成熟肝细胞和肝癌细胞,这些细胞被封装在聚乙二醇水凝胶中。多参数 μ-组织细胞仪能够定量分析完整 μ-组织群体(n≥10²-10³)内荧光报告基因的表达,并基于分选对亚群进行富集,用于后续研究。此外,3D μ-组织可以在体内植入,对系统刺激做出反应,取出并进行定量评估。为了促进多重“汇集”实验,开发并利用荧光标记策略来研究 μ-组织组成和暴露于可溶性因子的影响。特别是,对收集的 3D 肝癌 μ-组织进行药物/基因相互作用的检查表明,阿霉素和抗凋亡基因 BCL-XL 的 siRNA 敲低的协同影响。总之,这些研究强调了 μ-组织悬浮液作为一种强大方法的广泛应用,可用于体外和体内 3D 组织生物学的高通量、群体分析。

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