Department of Life Sciences, Pohang University of Science and Technology, Pohang, South Korea.
Department of Integrative Biosciences and Biotechnology, Pohang University of Science and Technology, Pohang, South Korea.
Nature. 2020 Dec;588(7839):664-669. doi: 10.1038/s41586-020-3034-x. Epub 2020 Dec 16.
Current organoid models are limited by their inability to mimic mature organ architecture and associated tissue microenvironments. Here we create multilayer bladder 'assembloids' by reconstituting tissue stem cells with stromal components to represent an organized architecture with an epithelium surrounding stroma and an outer muscle layer. These assembloids exhibit characteristics of mature adult bladders in cell composition and gene expression at the single-cell transcriptome level, and recapitulate in vivo tissue dynamics of regenerative responses to injury. We also develop malignant counterpart tumour assembloids to recapitulate the in vivo pathophysiological features of urothelial carcinoma. Using the genetically manipulated tumour-assembloid platform, we identify tumoural FOXA1, induced by stromal bone morphogenetic protein (BMP), as a master pioneer factor that drives enhancer reprogramming for the determination of tumour phenotype, suggesting the importance of the FOXA1-BMP-hedgehog signalling feedback axis between tumour and stroma in the control of tumour plasticity.
目前的类器官模型受到其无法模拟成熟器官结构和相关组织微环境的限制。在这里,我们通过将组织干细胞与基质成分重新构成来创建多层膀胱“组装体”,以代表具有围绕基质的上皮和外部肌肉层的组织有序结构。这些组装体在单细胞转录组水平上表现出成熟成人膀胱的细胞组成和基因表达特征,并在体内重现了对损伤的再生反应的组织动力学。我们还开发了恶性对应肿瘤组装体,以重现尿路上皮癌的体内病理生理特征。使用基因操纵的肿瘤组装体平台,我们确定了由基质骨形态发生蛋白 (BMP) 诱导的肿瘤 FOXA1 是驱动增强子重编程以确定肿瘤表型的主要启动因子,这表明肿瘤和基质之间的 FOXA1-BMP-hedgehog 信号反馈轴在控制肿瘤可塑性方面的重要性。