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在Lgr5肠道干细胞自我更新过程中Wnt和R-spondin配体的非等效性。

Non-equivalence of Wnt and R-spondin ligands during Lgr5 intestinal stem-cell self-renewal.

作者信息

Yan Kelley S, Janda Claudia Y, Chang Junlei, Zheng Grace X Y, Larkin Kathryn A, Luca Vincent C, Chia Luis A, Mah Amanda T, Han Arnold, Terry Jessica M, Ootani Akifumi, Roelf Kelly, Lee Mark, Yuan Jenny, Li Xiao, Bolen Christopher R, Wilhelmy Julie, Davies Paige S, Ueno Hiroo, von Furstenberg Richard J, Belgrader Phillip, Ziraldo Solongo B, Ordonez Heather, Henning Susan J, Wong Melissa H, Snyder Michael P, Weissman Irving L, Hsueh Aaron J, Mikkelsen Tarjei S, Garcia K Christopher, Kuo Calvin J

机构信息

Department of Medicine, Stanford University School of Medicine, Stanford, California 94305, USA.

Columbia Center for Human Development, Department of Medicine, Division of Digestive and Liver Diseases, Department of Genetics and Development, Columbia University Medical Center, New York 10032, USA.

出版信息

Nature. 2017 May 11;545(7653):238-242. doi: 10.1038/nature22313. Epub 2017 May 3.

Abstract

The canonical Wnt/β-catenin signalling pathway governs diverse developmental, homeostatic and pathological processes. Palmitoylated Wnt ligands engage cell-surface frizzled (FZD) receptors and LRP5 and LRP6 co-receptors, enabling β-catenin nuclear translocation and TCF/LEF-dependent gene transactivation. Mutations in Wnt downstream signalling components have revealed diverse functions thought to be carried out by Wnt ligands themselves. However, redundancy between the 19 mammalian Wnt proteins and 10 FZD receptors and Wnt hydrophobicity have made it difficult to attribute these functions directly to Wnt ligands. For example, individual mutations in Wnt ligands have not revealed homeostatic phenotypes in the intestinal epithelium-an archetypal canonical, Wnt pathway-dependent, rapidly self-renewing tissue, the regeneration of which is fueled by proliferative crypt Lgr5 intestinal stem cells (ISCs). R-spondin ligands (RSPO1-RSPO4) engage distinct LGR4-LGR6, RNF43 and ZNRF3 receptor classes, markedly potentiate canonical Wnt/β-catenin signalling, and induce intestinal organoid growth in vitro and Lgr5 ISCs in vivo. However, the interchangeability, functional cooperation and relative contributions of Wnt versus RSPO ligands to in vivo canonical Wnt signalling and ISC biology remain unknown. Here we identify the functional roles of Wnt and RSPO ligands in the intestinal crypt stem-cell niche. We show that the default fate of Lgr5 ISCs is to differentiate, unless both RSPO and Wnt ligands are present. However, gain-of-function studies using RSPO ligands and a new non-lipidated Wnt analogue reveal that these ligands have qualitatively distinct, non-interchangeable roles in ISCs. Wnt proteins are unable to induce Lgr5 ISC self-renewal, but instead confer a basal competency by maintaining RSPO receptor expression that enables RSPO ligands to actively drive and specify the extent of stem-cell expansion. This functionally non-equivalent yet cooperative interaction between Wnt and RSPO ligands establishes a molecular precedent for regulation of mammalian stem cells by distinct priming and self-renewal factors, with broad implications for precise control of tissue regeneration.

摘要

经典的Wnt/β-连环蛋白信号通路调控着多种发育、稳态和病理过程。棕榈酰化的Wnt配体与细胞表面的卷曲蛋白(FZD)受体以及低密度脂蛋白受体相关蛋白5(LRP5)和低密度脂蛋白受体相关蛋白6(LRP6)共受体结合,促使β-连环蛋白向细胞核内转运以及TCF/LEF依赖的基因转录激活。Wnt下游信号成分的突变揭示了Wnt配体自身可能执行的多种功能。然而,19种哺乳动物Wnt蛋白与10种FZD受体之间的冗余性以及Wnt的疏水性使得难以直接将这些功能归因于Wnt配体。例如,Wnt配体中的个别突变并未在肠上皮中揭示出稳态表型,肠上皮是典型的经典Wnt通路依赖的、快速自我更新的组织,其再生由增殖性隐窝Lgr5肠干细胞(ISC)驱动。R-spondin配体(RSPO1-RSPO4)与不同的LGR4-LGR6、RNF43和ZNRF3受体类别结合,显著增强经典的Wnt/β-连环蛋白信号,并在体外诱导肠类器官生长以及在体内诱导Lgr5 ISC生长。然而,Wnt与RSPO配体在体内经典Wnt信号和ISC生物学中的互换性、功能协同作用以及相对贡献仍不清楚。在这里,我们确定了Wnt和RSPO配体在肠隐窝干细胞微环境中的功能作用。我们表明,Lgr5 ISC的默认命运是分化,除非同时存在RSPO和Wnt配体。然而,使用RSPO配体和一种新的非脂质化Wnt类似物进行的功能获得性研究表明,这些配体在ISC中具有质的不同、不可互换的作用。Wnt蛋白无法诱导Lgr5 ISC自我更新,而是通过维持RSPO受体表达赋予一种基础能力,使RSPO配体能够积极驱动并确定干细胞扩增的程度。Wnt和RSPO配体之间这种功能上不等同但协同的相互作用为不同的启动和自我更新因子对哺乳动物干细胞的调控建立了分子先例,对组织再生的精确控制具有广泛影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e04e/5641471/aac5a331019c/nihms864504f1.jpg

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