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COP9-刺猬信号轴调控果蝇卵巢中生殖系干细胞后代分化微环境的功能。

COP9-Hedgehog axis regulates the function of the germline stem cell progeny differentiation niche in the Drosophila ovary.

作者信息

Lu Tinglin, Wang Su, Gao Yuan, Mao Ying, Yang Zhihao, Liu Luping, Song Xiaoqing, Ni Jianquan, Xie Ting

机构信息

Tsinghua-Peking Joint Center for Life Sciences, School of Life Sciences, Tsinghua University, Beijing 100084, China.

Stowers Institute for Medical Research, 1000 East 50th Street, Kansas City, MO 64110, USA Department of Anatomy and Cell Biology, University of Kansas School of Medicine, 3901 Rainbow Blvd, Kansas City, KS 66160, USA.

出版信息

Development. 2015 Dec 15;142(24):4242-52. doi: 10.1242/dev.124768.

Abstract

Both stem cell self-renewal and lineage differentiation are controlled extrinsically as well as intrinsically. Germline stem cells (GSCs) in the Drosophila ovary provide an attractive model in which to study both stem cell self-renewal and lineage differentiation at the molecular and cellular level. Recently, we have proposed that escort cells (ECs) form a differentiation niche to control GSC lineage specification extrinsically. However, it remains poorly understood how the maintenance and function of the differentiation niche are regulated at the molecular level. Here, this study reveals a new role of COP9 in the differentiation niche to modulate autocrine Hedgehog (Hh) signaling, thereby promoting GSC lineage differentiation. COP9, which is a highly conserved protein complex composed of eight CSN subunits, catalyzes the removal of Nedd8 protein modification from target proteins. Our genetic results have demonstrated that all the COP9 components and the hh pathway components, including hh itself, are required in ECs to promote GSC progeny differentiation. Interestingly, COP9 is required in ECs to maintain Hh signaling activity, and activating Hh signaling in ECs can partially bypass the requirement for COP9 in GSC progeny differentiation. Finally, both COP9 and Hh signaling in ECs promote GSC progeny differentiation partly by preventing BMP signaling and maintaining cellular processes. Therefore, this study has demonstrated that the COP9-Hh signaling axis operates in the differentiation niche to promote GSC progeny differentiation partly by maintaining EC cellular processes and preventing BMP signaling. This provides new insight into how the function of the differentiation niche is regulated at the molecular level.

摘要

干细胞的自我更新和谱系分化既受外在因素控制,也受内在因素控制。果蝇卵巢中的生殖系干细胞(GSCs)提供了一个极具吸引力的模型,可用于在分子和细胞水平上研究干细胞的自我更新和谱系分化。最近,我们提出护送细胞(ECs)形成一个分化微环境,以从外部控制GSC谱系特化。然而,在分子水平上,分化微环境的维持和功能如何受到调控仍知之甚少。在此,本研究揭示了COP9在分化微环境中的新作用,即调节自分泌Hedgehog(Hh)信号通路,从而促进GSC谱系分化。COP9是一种由八个CSN亚基组成的高度保守的蛋白质复合物,催化从靶蛋白上去除Nedd8蛋白修饰。我们的遗传学结果表明,ECs中所有的COP9组分和hh信号通路组分,包括hh自身,都是促进GSC子代分化所必需的。有趣的是,ECs中需要COP9来维持Hh信号活性,并且在ECs中激活Hh信号可以部分绕过GSC子代分化中对COP9的需求。最后,ECs中的COP9和Hh信号通路都通过抑制BMP信号通路和维持细胞进程来部分促进GSC子代分化。因此,本研究表明COP9-Hh信号轴在分化微环境中发挥作用,通过维持EC细胞进程和抑制BMP信号通路来部分促进GSC子代分化。这为在分子水平上调控分化微环境的功能提供了新的见解。

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