Rapidly cycling stem cells regenerate the intestine independent of Lgr5high cells

Author:

Sheng Xiaole,Lin Ziguang,Lv Cong,Shao Chunlei,Bi Xueyun,Deng Min,Xu Jiuzhi,Guerrero-Juarez Christian F.,Li Mengzhen,Wu Xi,Zhao Ran,Liu Xiaowei,Wang Qingyu,Nie Qing,Cui WeiORCID,Gao Shan,Zhang HongquanORCID,Liu Zhihua,Cong Yingzi,Plikus Maksim V.,Lengner Christopher J.,Andersen Bogi,Ren Fazheng,Yu Zhengquan

Abstract

AbstractThe +4 cells in intestinal crypts are DNA damage-resistant and contribute to regeneration. However, their exact identity and the mechanism underlying +4 cell-mediated regeneration remain unclear. Using lineage tracing, we show that cells marked by an Msi1 reporter (Msi1+) are enriched at the +4 position in intestinal crypts and exhibit DNA damage resistance. Single-cell RNA sequencing reveals that the Msi1+ cells are heterogeneous with the majority being intestinal stem cells (ISCs). The DNA damage-resistant subpopulation of Msi1+ cells is characterized by low-to-negative Lgr5 expression and is more rapidly cycling than Lgr5high radio-sensitive crypt base columnar stem cells (CBCs); they enable fast repopulation of the intestinal epithelium independent of CBCs that are largely depleted after irradiation. Furthermore, relative to CBCs, Msi1+ cells preferentially produce Paneth cells during homeostasis and upon radiation repair. Together, we demonstrate that the DNA damage-resistant Msi1+ cells are rapidly cycling ISCs that maintain and regenerate the intestinal epithelium.

Publisher

Cold Spring Harbor Laboratory

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