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FAMA 在拟南芥和菘蓝气孔发育中的扩展作用和调控分化。

Expanded roles and divergent regulation of FAMA in Brachypodium and Arabidopsis stomatal development.

机构信息

Department of Genetics, Stanford School of Medicine, Stanford, California 94305, USA.

Biology Department, Stanford University, 371 Jane Stanford Way, Stanford, California 94305, USA.

出版信息

Plant Cell. 2023 Feb 20;35(2):756-775. doi: 10.1093/plcell/koac341.

Abstract

Stomata, cellular valves found on the surfaces of aerial plant tissues, present a paradigm for studying cell fate and patterning in plants. A highly conserved core set of related basic helix-loop-helix (bHLH) transcription factors regulates stomatal development across diverse species. We characterized BdFAMA in the temperate grass Brachypodium distachyon and found this late-acting transcription factor was necessary and sufficient for specifying stomatal guard cell fate, and unexpectedly, could also induce the recruitment of subsidiary cells in the absence of its paralogue, BdMUTE. The overlap in function is paralleled by an overlap in expression pattern and by unique regulatory relationships between BdMUTE and BdFAMA. To better appreciate the relationships among the Brachypodium stomatal bHLHs, we used in vivo proteomics in developing leaves and found evidence for multiple shared interaction partners. We reexamined the roles of these genes in Arabidopsis thaliana by testing genetic sufficiency within and across species, and found that while BdFAMA and AtFAMA can rescue stomatal production in Arabidopsis fama and mute mutants, only AtFAMA can specify Brassica-specific myrosin idioblasts. Taken together, our findings refine the current models of stomatal bHLH function and regulatory feedback among paralogues within grasses as well as across the monocot/dicot divide.

摘要

气孔是存在于气生植物组织表面的细胞瓣膜,为研究植物细胞命运和模式提供了范例。高度保守的一组相关基本螺旋-环-螺旋(bHLH)转录因子调节不同物种的气孔发育。我们在温带草属植物柳枝稷中对 BdFAMA 进行了表征,发现这种晚期作用的转录因子对于指定气孔保卫细胞命运是必要的和充分的,出乎意料的是,在没有其同源物 BdMUTE 的情况下,也可以诱导侧细胞的招募。功能的重叠与表达模式的重叠以及 BdMUTE 和 BdFAMA 之间独特的调控关系相平行。为了更好地了解拟南芥气孔 bHLH 之间的关系,我们在发育中的叶片中使用体内蛋白质组学发现了多个共享的相互作用伙伴的证据。我们通过在物种内和跨物种测试遗传充分性来重新检验这些基因在拟南芥中的作用,发现虽然 BdFAMA 和 AtFAMA 可以拯救拟南芥 fama 和 mute 突变体中的气孔产生,但只有 AtFAMA 可以指定 Brassica 特异性的芥子酶胚细胞。总之,我们的研究结果细化了目前的气孔 bHLH 功能模型以及禾本科植物中同源物之间的调控反馈,以及单子叶植物/双子叶植物之间的划分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1eb0/9940870/df544516f3f2/koac341f1.jpg

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