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Foxp1 对于导管形态发生是必不可少的,并且控制乳腺干细胞从静止状态中退出。

Foxp1 Is Indispensable for Ductal Morphogenesis and Controls the Exit of Mammary Stem Cells from Quiescence.

机构信息

Stem Cells and Cancer Division, The Walter and Eliza Hall Institute of Medical Research, Parkville, VIC 3052, Australia; Department of Medical Biology, The University of Melbourne, Parkville, VIC 3010, Australia; Cancer and Stem Cell Biology Program, Duke-NUS Medical School, Singapore 169857, Singapore.

Stem Cells and Cancer Division, The Walter and Eliza Hall Institute of Medical Research, Parkville, VIC 3052, Australia; Department of Medical Biology, The University of Melbourne, Parkville, VIC 3010, Australia.

出版信息

Dev Cell. 2018 Dec 3;47(5):629-644.e8. doi: 10.1016/j.devcel.2018.10.001. Epub 2018 Oct 25.

Abstract

Long-lived quiescent mammary stem cells (MaSCs) are presumed to coordinate the dramatic expansion of ductal epithelium that occurs through the different phases of postnatal development, but little is known about the molecular regulators that underpin their activation. We show that ablation of the transcription factor Foxp1 in the mammary gland profoundly impairs ductal morphogenesis, resulting in a rudimentary tree throughout life. Foxp1-deficient glands were highly enriched for quiescent Tspan8 MaSCs, which failed to become activated even in competitive transplantation assays, thus highlighting a cell-intrinsic defect. Foxp1 deletion also resulted in aberrant expression of basal genes in luminal cells, inferring a role in cell-fate decisions. Notably, Foxp1 was uncovered as a direct repressor of Tspan8 in basal cells, and deletion of Tspan8 rescued the defects in ductal morphogenesis elicited by Foxp1 loss. Thus, a single transcriptional regulator Foxp1 can control the exit of MaSCs from dormancy to orchestrate differentiation and development.

摘要

长寿静止的乳腺干细胞(MaSCs)被认为协调着发生在出生后不同阶段的导管上皮的剧烈扩张,但关于支撑它们激活的分子调节剂知之甚少。我们表明,乳腺中转录因子 Foxp1 的缺失严重损害了导管形态发生,导致终生出现基本的树状结构。Foxp1 缺陷的腺体富含静止的 Tspan8 MaSCs,即使在竞争移植实验中也未能被激活,从而突出了细胞内在的缺陷。Foxp1 的缺失还导致腔细胞中基底基因的异常表达,推断其在细胞命运决定中起作用。值得注意的是,Foxp1 被揭示为基底细胞中 Tspan8 的直接阻遏物,并且 Tspan8 的缺失挽救了 Foxp1 缺失引起的导管形态发生缺陷。因此,单个转录调节因子 Foxp1 可以控制 MaSCs 从休眠中退出,以协调分化和发育。

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