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Notch 信号的远距离激活诱导干细胞龛组装。

Distant activation of Notch signaling induces stem cell niche assembly.

机构信息

Institute of Cell Biochemistry, Hannover Medical School, Hannover, Germany.

出版信息

PLoS Genet. 2021 Mar 29;17(3):e1009489. doi: 10.1371/journal.pgen.1009489. eCollection 2021 Mar.

Abstract

Here we show that multiple modes of Notch signaling activation specify the complexity of spatial cellular interactions necessary for stem cell niche assembly. In particular, we studied the formation of the germline stem cell niche in Drosophila ovaries, which is a two-step process whereby terminal filaments are formed first. Then, terminal filaments signal to the adjacent cap cell precursors, resulting in Notch signaling activation, which is necessary for the lifelong acquisition of stem cell niche cell fate. The genetic data suggest that in order to initiate the process of stem cell niche assembly, Notch signaling is activated among non-equipotent cells via distant induction, where germline Delta is delivered to somatic cells located several diameters away via cellular projections generated by primordial germ cells. At the same time, to ensure the robustness of niche formation, terminal filament cell fate can also be induced by somatic Delta via cis- or trans-inhibition. This exemplifies a double security mechanism that guarantees that the germline stem cell niche is formed, since it is indispensable for the adjacent germline precursor cells to acquire and maintain stemness necessary for successful reproduction. These findings contribute to our understanding of the formation of stem cell niches in their natural environment, which is important for stem cell biology and regenerative medicine.

摘要

在这里,我们展示了 Notch 信号激活的多种模式指定了干细胞生态位组装所需的空间细胞相互作用的复杂性。具体来说,我们研究了果蝇卵巢中的生殖干细胞生态位的形成,这是一个两步过程,首先形成末端丝。然后,末端丝信号传递给相邻的帽细胞前体细胞,导致 Notch 信号激活,这对于获得干细胞生态位细胞命运是必需的。遗传数据表明,为了启动干细胞生态位组装过程,通过远距离诱导在非等能细胞中激活 Notch 信号,生殖系 Delta 通过原始生殖细胞产生的细胞突起被递送到位于几个直径之外的体细胞中。同时,为了确保生态位形成的稳健性,末端丝细胞命运也可以通过顺式或反式抑制由体细胞 Delta 诱导。这说明了一种双重安全机制,它保证了生殖干细胞生态位的形成,因为对于相邻的生殖系前体细胞来说,获得和维持成功繁殖所需的干性是必不可少的。这些发现有助于我们理解在自然环境中干细胞生态位的形成,这对于干细胞生物学和再生医学很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ab1/8031783/c36601e5d7ba/pgen.1009489.g001.jpg

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