生物
干细胞
细胞生物学
再生(生物学)
人口
上皮
肠上皮
免疫学
病理
遗传学
医学
环境卫生
作者
Yi Wang,I-Ling Chiang,Takahiro E. Ohara,Satoru Fujii,Jiye Cheng,Brian D. Muegge,Aaron M. Ver Heul,Nathan D. Han,Qiuhe Lu,Shanshan Xiong,Feidi Chen,Chin‐Wen Lai,Hana Jáňová,Renee Wu,Charles E. Whitehurst,Kelli L. VanDussen,Ta‐Chiang Liu,Jeffrey I. Gordon,L. David Sibley,Thaddeus S. Stappenbeck
出处
期刊:Cell
[Elsevier]
日期:2019-11-01
卷期号:179 (5): 1144-1159.e15
被引量:165
标识
DOI:10.1016/j.cell.2019.10.015
摘要
The colonic epithelium can undergo multiple rounds of damage and repair, often in response to excessive inflammation. The responsive stem cell that mediates this process is unclear, in part because of a lack of in vitro models that recapitulate key epithelial changes that occur in vivo during damage and repair. Here, we identify a Hopx+ colitis-associated regenerative stem cell (CARSC) population that functionally contributes to mucosal repair in mouse models of colitis. Hopx+ CARSCs, enriched for fetal-like markers, transiently arose from hypertrophic crypts known to facilitate regeneration. Importantly, we established a long-term, self-organizing two-dimensional (2D) epithelial monolayer system to model the regenerative properties and responses of Hopx+ CARSCs. This system can reenact the "homeostasis-injury-regeneration" cycles of epithelial alterations that occur in vivo. Using this system, we found that hypoxia and endoplasmic reticulum stress, insults commonly present in inflammatory bowel diseases, mediated the cyclic switch of cellular status in this process.
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