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本文引用的文献

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Secondary thickening in roots of Arabidopsis thaliana: anatomy and cell surface changes.拟南芥根中的次生加厚:解剖结构与细胞表面变化
New Phytol. 1995 Sep;131(1):121-128. doi: 10.1111/j.1469-8137.1995.tb03061.x.
2
WOX4 promotes procambial development.WOX4 促进原形成层的发育。
Plant Physiol. 2010 Mar;152(3):1346-56. doi: 10.1104/pp.109.149641. Epub 2009 Dec 31.
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Receptor-like kinases shape the plant.类受体激酶塑造了植物。
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Stem cell function during plant vascular development.植物血管发育过程中的干细胞功能。
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Differential recruitment of WOX transcription factors for lateral development and organ fusion in Petunia and Arabidopsis.矮牵牛和拟南芥中WOX转录因子在侧生发育和器官融合中的差异募集。
Plant Cell. 2009 Aug;21(8):2269-83. doi: 10.1105/tpc.109.065862. Epub 2009 Aug 28.
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A signaling module controlling the stem cell niche in Arabidopsis root meristems.一个控制拟南芥根分生组织中干细胞微环境的信号传导模块。
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Survival of the flexible: hormonal growth control and adaptation in plant development.柔韧者的生存之道:植物发育中的激素生长调控与适应性
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Ethylene is an endogenous stimulator of cell division in the cambial meristem of Populus.乙烯是杨树形成层分生组织中细胞分裂的内源性刺激物。
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9
The WUSCHEL-related homeobox gene WOX11 is required to activate shoot-borne crown root development in rice.水稻中与WUSCHEL相关的同源异型盒基因WOX11是激活茎生冠根发育所必需的。
Plant Cell. 2009 Mar;21(3):736-48. doi: 10.1105/tpc.108.061655. Epub 2009 Mar 3.
10
Cytokinins are central regulators of cambial activity.细胞分裂素是形成层活动的核心调节因子。
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TDIF 肽信号通过拟南芥中的 WOX4 同源盒基因调节血管干细胞增殖。

TDIF peptide signaling regulates vascular stem cell proliferation via the WOX4 homeobox gene in Arabidopsis.

机构信息

Department of Biological Sciences, Graduate School of Science, University of Tokyo, Bunkyo-ku, Tokyo 113-0033, Japan.

出版信息

Plant Cell. 2010 Aug;22(8):2618-29. doi: 10.1105/tpc.110.076083. Epub 2010 Aug 20.

DOI:10.1105/tpc.110.076083
PMID:20729381
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2947162/
Abstract

The indeterminate nature of plant growth and development depends on the stem cell system found in meristems. The Arabidopsis thaliana vascular meristem includes procambium and cambium. In these tissues, cell-cell signaling, mediated by a ligand-receptor pair made of the TDIF (for tracheary element differentiation inhibitory factor) peptide and the TDR/PXY (for TDIF RECEPTOR/ PHLOEM INTERCALATED WITH XYLEM) membrane protein kinase, promotes proliferation of procambial cells and suppresses their xylem differentiation. Here, we report that a WUSCHEL-related HOMEOBOX gene, WOX4, is a key target of the TDIF signaling pathway. WOX4 is expressed preferentially in the procambium and cambium, and its expression level was upregulated upon application of TDIF in a TDR-dependent manner. Genetic analyses showed that WOX4 is required for promoting the proliferation of procambial/cambial stem cells but not for repressing their commitment to xylem differentiation in response to the TDIF signal. Thus, at least two intracellular signaling pathways that diverge after TDIF recognition by TDR might regulate independently the behavior of vascular stem cells. Detailed observations in loss-of-function mutants revealed that TDIF-TDR-WOX4 signaling plays a crucial role in the maintenance of the vascular meristem organization during secondary growth.

摘要

植物生长和发育的不定性取决于存在于分生组织中的干细胞系统。拟南芥的维管分生组织包括原形成层和形成层。在这些组织中,细胞间信号转导由由 TDIF(木质部分化抑制因子)肽和 TDR/PXY(TDIF 受体/木质部与韧皮部间插入)膜蛋白激酶组成的配体-受体对介导,促进原形成层细胞的增殖并抑制其木质部分化。在这里,我们报告称,一个与 WUSCHEL 相关的 HOMEOBOX 基因 WOX4 是 TDIF 信号通路的关键靶标。WOX4 优先在原形成层和形成层中表达,并且其表达水平在 TDR 依赖性方式下应用 TDIF 时上调。遗传分析表明,WOX4 是促进原形成层/形成层干细胞增殖所必需的,但不是响应 TDIF 信号抑制其木质部分化的必需的。因此,在 TDIF 被 TDR 识别后,至少有两个细胞内信号通路可能会独立地调节血管干细胞的行为。在功能丧失突变体中的详细观察表明,TDIF-TDR-WOX4 信号在次生生长过程中维持维管分生组织组织方面起着至关重要的作用。