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豌豆分枝RMS2基因编码PsAFB4/5生长素受体,并参与生长素-独脚金内酯调控环。

The pea branching RMS2 gene encodes the PsAFB4/5 auxin receptor and is involved in an auxin-strigolactone regulation loop.

作者信息

Ligerot Yasmine, de Saint Germain Alexandre, Waldie Tanya, Troadec Christelle, Citerne Sylvie, Kadakia Nikita, Pillot Jean-Paul, Prigge Michael, Aubert Grégoire, Bendahmane Abdelhafid, Leyser Ottoline, Estelle Mark, Debellé Frédéric, Rameau Catherine

机构信息

Institut Jean-Pierre Bourgin, INRA, AgroParisTech, CNRS, Université Paris-Saclay, Versailles, France.

Université Paris-Sud, Université Paris-Saclay, Orsay, France.

出版信息

PLoS Genet. 2017 Dec 8;13(12):e1007089. doi: 10.1371/journal.pgen.1007089. eCollection 2017 Dec.

Abstract

Strigolactones (SLs) are well known for their role in repressing shoot branching. In pea, increased transcript levels of SL biosynthesis genes are observed in stems of highly branched SL deficient (ramosus1 (rms1) and rms5) and SL response (rms3 and rms4) mutants indicative of negative feedback control. In contrast, the highly branched rms2 mutant has reduced transcript levels of SL biosynthesis genes. Grafting studies and hormone quantification led to a model where RMS2 mediates a shoot-to-root feedback signal that regulates both SL biosynthesis gene transcript levels and xylem sap levels of cytokinin exported from roots. Here we cloned RMS2 using synteny with Medicago truncatula and demonstrated that it encodes a putative auxin receptor of the AFB4/5 clade. Phenotypes similar to rms2 were found in Arabidopsis afb4/5 mutants, including increased shoot branching, low expression of SL biosynthesis genes and high auxin levels in stems. Moreover, afb4/5 and rms2 display a specific resistance to the herbicide picloram. Yeast-two-hybrid experiments supported the hypothesis that the RMS2 protein functions as an auxin receptor. SL root feeding using hydroponics repressed auxin levels in stems and down-regulated transcript levels of auxin biosynthesis genes within one hour. This auxin down-regulation was also observed in plants treated with the polar auxin transport inhibitor NPA. Together these data suggest a homeostatic feedback loop in which auxin up-regulates SL synthesis in an RMS2-dependent manner and SL down-regulates auxin synthesis in an RMS3 and RMS4-dependent manner.

摘要

独脚金内酯(SLs)因其在抑制茎枝分枝方面的作用而闻名。在豌豆中,在高度分枝的SL缺陷型(ramosus1(rms1)和rms5)以及SL反应型(rms3和rms4)突变体的茎中观察到SL生物合成基因的转录水平增加,这表明存在负反馈控制。相反,高度分枝的rms2突变体中SL生物合成基因的转录水平降低。嫁接研究和激素定量导致了一个模型,其中RMS2介导了一个从地上部到根部的反馈信号,该信号调节SL生物合成基因的转录水平以及从根部输出的细胞分裂素的木质部汁液水平。在这里,我们利用与蒺藜苜蓿的同源性克隆了RMS2,并证明它编码AFB4/5分支的一个假定生长素受体。在拟南芥afb4/5突变体中发现了与rms2相似的表型,包括茎枝分枝增加、SL生物合成基因的低表达以及茎中高生长素水平。此外,afb4/5和rms2对除草剂毒莠定表现出特异性抗性。酵母双杂交实验支持了RMS2蛋白作为生长素受体发挥作用的假说。使用水培法给根部供应SL在一小时内抑制了茎中的生长素水平,并下调了生长素生物合成基因的转录水平。在用极性生长素运输抑制剂NPA处理的植物中也观察到了这种生长素下调。这些数据共同表明了一个稳态反馈回路,其中生长素以RMS2依赖的方式上调SL合成,而SL以RMS3和RMS4依赖的方式下调生长素合成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/182c/5738142/36357a4a9b96/pgen.1007089.g001.jpg

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