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通过保守的相互作用转录调节因子控制植物干细胞功能。

Control of plant stem cell function by conserved interacting transcriptional regulators.

作者信息

Zhou Yun, Liu Xing, Engstrom Eric M, Nimchuk Zachary L, Pruneda-Paz Jose L, Tarr Paul T, Yan An, Kay Steve A, Meyerowitz Elliot M

机构信息

Division of Biology, California Institute of Technology, 1200 East California Boulevard, Pasadena, California 91125, USA.

Biology Department, College of William and Mary, Williamsburg, Virginia 23187-8795, USA.

出版信息

Nature. 2015 Jan 15;517(7534):377-80. doi: 10.1038/nature13853. Epub 2014 Oct 26.

Abstract

Plant stem cells in the shoot apical meristem (SAM) and root apical meristem are necessary for postembryonic development of aboveground tissues and roots, respectively, while secondary vascular stem cells sustain vascular development. WUSCHEL (WUS), a homeodomain transcription factor expressed in the rib meristem of the Arabidopsis SAM, is a key regulatory factor controlling SAM stem cell populations, and is thought to establish the shoot stem cell niche through a feedback circuit involving the CLAVATA3 (CLV3) peptide signalling pathway. WUSCHEL-RELATED HOMEOBOX 5 (WOX5), which is specifically expressed in the root quiescent centre, defines quiescent centre identity and functions interchangeably with WUS in the control of shoot and root stem cell niches. WOX4, expressed in Arabidopsis procambial cells, defines the vascular stem cell niche. WUS/WOX family proteins are evolutionarily and functionally conserved throughout the plant kingdom and emerge as key actors in the specification and maintenance of stem cells within all meristems. However, the nature of the genetic regime in stem cell niches that centre on WOX gene function has been elusive, and molecular links underlying conserved WUS/WOX function in stem cell niches remain unknown. Here we demonstrate that the Arabidopsis HAIRY MERISTEM (HAM) family of transcription regulators act as conserved interacting cofactors with WUS/WOX proteins. HAM and WUS share common targets in vivo and their physical interaction is important in driving downstream transcriptional programs and in promoting shoot stem cell proliferation. Differences in the overlapping expression patterns of WOX and HAM family members underlie the formation of diverse stem cell niche locations, and the HAM family is essential for all of these stem cell niches. These findings establish a new framework for the control of stem cell production during plant development.

摘要

茎尖分生组织(SAM)和根尖分生组织中的植物干细胞分别是地上组织和根胚胎后发育所必需的,而次生维管干细胞维持维管发育。WUSCHEL(WUS)是一种在拟南芥SAM的肋状分生组织中表达的同源结构域转录因子,是控制SAM干细胞群体的关键调节因子,被认为通过涉及CLAVATA3(CLV3)肽信号通路的反馈回路建立茎干细胞龛。WUSCHEL相关同源框5(WOX5)在根静止中心特异性表达,定义静止中心特性,并在控制茎和根干细胞龛方面与WUS功能互换。WOX4在拟南芥原形成层细胞中表达,定义维管干细胞龛。WUS/WOX家族蛋白在整个植物界在进化和功能上都是保守的,并成为所有分生组织中干细胞特化和维持的关键参与者。然而,以WOX基因功能为中心的干细胞龛中遗传机制的本质一直难以捉摸,干细胞龛中保守的WUS/WOX功能的分子联系仍然未知。在这里,我们证明拟南芥毛状分生组织(HAM)转录调节因子家族作为与WUS/WOX蛋白保守的相互作用辅因子。HAM和WUS在体内有共同的靶标,它们的物理相互作用对于驱动下游转录程序和促进茎干细胞增殖很重要。WOX和HAM家族成员重叠表达模式的差异是不同干细胞龛位置形成的基础,并且HAM家族对所有这些干细胞龛都是必不可少的。这些发现为植物发育过程中干细胞产生的控制建立了一个新框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/06cd/4297503/9f1973ddeb85/nihms627782f5.jpg

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