Robust intestinal homeostasis relies on cellular plasticity in enteroblasts mediated by miR-8-Escargot switch

被引:95
作者
Antonello, Zeus A. [1 ]
Reiff, Tobias [1 ]
Ballesta-Illan, Esther [1 ]
Dominguez, Maria [1 ]
机构
[1] UMH, CSIC, Inst Neurociencias, Alicante, Spain
关键词
EMT/MET; Escargot/Snail2-miR-8/miR-200; intestinal homeostasis; intestinal renewal; stemness; STEM-CELL; TRANSCRIPTIONAL REPRESSOR; MESENCHYMAL TRANSITION; TRANSGENIC RNAI; DROSOPHILA; DIFFERENTIATION; MIDGUT; PROLIFERATION; MIR-8/MIR-200; MAINTENANCE;
D O I
10.15252/embj.201591517
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
The intestinal epithelium is remarkably robust despite perturbations and demand uncertainty. Here, we investigate the basis of such robustness using novel tracing methods that allow simultaneously capturing the dynamics of stem and committed progenitor cells (called enteroblasts) and intestinal cell turnover with spatio-temporal resolution. We found that intestinal stem cells (ISCs) divide "ahead" of demand during Drosophila midgut homeostasis. Their newborn enteroblasts, on the other hand, take on a highly polarized shape, acquire invasive properties and motility. They extend long membrane protrusions that make cell-cell contact with mature cells, while exercising a capacity to delay their final differentiation until a local demand materializes. This cellular plasticity is mechanistically linked to the epithelial-mesenchymal transition (EMT) programme mediated by escargot, a snail family gene. Activation of the conserved microRNA miR-8/miR-200 in "pausing" enteroblasts in response to a local cell loss promotes timely terminal differentiation via a reverse MET by antagonizing escargot. Our findings unveil that robust intestinal renewal relies on hitherto unrecognized plasticity in enteroblasts and reveal their active role in sensing and/or responding to local demand.
引用
收藏
页码:2025 / 2041
页数:17
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