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The Branching Gene RAMOSUS1 Mediates Interactions among Two Novel Signals and Auxin in Pea

机译:分支基因RAMOSUS1介导豌豆中两个新信号与生长素之间的相互作用

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摘要

In Pisum sativum, the RAMOSUS genes RMS1, RMS2, and RMS5 regulate shoot branching via physiologically defined mobile signals. RMS1 is most likely a carotenoid cleavage enzyme and acts with RMS5 to control levels of an as yet unidentified mobile branching inhibitor required for auxin inhibition of branching. Our work provides molecular, genetic, and physiological evidence that RMS1 plays a central role in a shoot-to-root-to-shoot feedback system that regulates shoot branching in pea. Indole-3-acetic acid (IAA) positively regulates RMS1 transcript level, a potentially important mechanism for regulation of shoot branching by IAA. In addition, RMS1 transcript levels are dramatically elevated in rms3, rms4, and rms5 plants, which do not contain elevated IAA levels. This degree of upregulation of RMS1 expression cannot be achieved in wild-type plants by exogenous IAA application. Grafting studies indicate that an IAA-independent mobile feedback signal contributes to the elevated RMS1 transcript levels in rms4 plants. Therefore, the long-distance signaling network controlling branching in pea involves IAA, the RMS1 inhibitor, and an IAA-independent feedback signal. Consistent with physiological studies that predict an interaction between RMS2 and RMS1, rms2 mutations appear to disrupt this IAA-independent regulation of RMS1 expression.
机译:在豌豆(Pisum sativum)中,RAMOSUS基因RMS1,RMS2和RMS5通过生理学定义的移动信号调节枝条分支。 RMS1最有可能是类胡萝卜素裂解酶,并与RMS5共同作用来控制生长素抑制分支所需的尚未确定的可移动分支抑制剂的水平。我们的工作提供了分子,遗传和生理学证据,证明RMS1在调节豌豆芽分支的芽对根至芽反馈系统中起着核心作用。吲哚-3-乙酸(IAA)积极调节RMS1转录水平,这可能是IAA调控枝条分支的潜在重要机制。此外,RMS1转录本水平在rms3,rms4和rms5植物中显着提高,而这些植物中IAA含量均未升高。 RMS1表达的这种上调程度在野生型植物中无法通过外源IAA施加。嫁接研究表明,独立于IAA的移动反馈信号导致rms4植物中RMS1转录水平升高。因此,控制豌豆分支的长途信令网络涉及IAA,RMS1抑制剂和独立于IAA的反馈信号。与预测RMS2和 RMS1 之间相互作用的生理研究一致, rms2 突变似乎破坏了这种独立于IAA的 RMS1 表达调控。

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