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RCN1-Regulated Phosphatase Activity and EIN2 Modulate Hypocotyl Gravitropism by a Mechanism That Does Not Require Ethylene Signaling

机译:RCN1调节磷酸酶活性和EIN2通过不需要乙烯信号传导的机制来调节下胚轴重力。

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摘要

The roots curl in naphthylphthalamic acid1 (rcn1) mutant of Arabidopsis (Arabidopsis thaliana) has altered auxin transport, gravitropism, and ethylene response, providing an opportunity to analyze the interplay between ethylene and auxin in control of seedling growth. Roots of rcn1 seedlings were previously shown to have altered auxin transport, growth, and gravitropism, while rcn1 hypocotyl elongation exhibited enhanced ethylene response. We have characterized auxin transport and gravitropism phenotypes of rcn1 hypocotyls and have explored the roles of auxin and ethylene in controlling these phenotypes. As in roots, auxin transport is increased in etiolated rcn1 hypocotyls. Hypocotyl gravity response is accelerated, although overall elongation is reduced, in etiolated rcn1 hypocotyls. Etiolated, but not light grown, rcn1 seedlings also overproduce ethylene, and mutations conferring ethylene insensitivity restore normal hypocotyl elongation to rcn1. Auxin transport is unaffected by treatment with the ethylene precursor 1-aminocyclopropane carboxylic acid in etiolated hypocotyls of wild-type and rcn1 seedlings. Surprisingly, the ethylene insensitive2-1 (ein2-1) and ein2-5 mutations dramatically reduce gravitropic bending in hypocotyls. However, the ethylene resistant1-3 (etr1-3) mutation does not significantly affect hypocotyl gravity response. Furthermore, neither the etr1 nor the ein2 mutation abrogates the accelerated gravitropism observed in rcn1 hypocotyls, indicating that both wild-type gravity response and enhanced gravity response in rcn1 do not require an intact ethylene-signaling pathway. We therefore conclude that the RCN1 protein affects overall hypocotyl elongation via negative regulation of ethylene synthesis in etiolated seedlings, and that RCN1 and EIN2 modulate hypocotyl gravitropism and ethylene responses through independent pathways.
机译:拟南芥(Arabidopsis thaliana)的萘基邻苯二甲酸1(rcn1)突变体的根卷曲改变了植物生长素的运输,引力和乙烯反应,为分析乙烯和植物生长素之间的相互作用控制幼苗生长提供了机会。先前显示rcn1幼苗的根已改变了生长素的运输,生长和重力,而rcn1下胚轴伸长显示出增强的乙烯反应。我们已经表征了生长素运输和rcn1下胚轴的重力趋向表型,并探讨了生长素和乙烯在控制这些表型中的作用。与根部一样,在黄化的rcn1下胚轴中生长素的转运增加。在黄化的rcn1下胚轴中,下胚轴重力反应被加速,尽管总体伸长率降低了。 rcn1幼苗虽然被光化,但生长不轻,它也会过量生产乙烯,而赋予乙烯不敏感性的突变可恢复rcn1的正常下胚轴伸长率。在野生型和rcn1幼苗的黄化下胚轴中,用乙烯前体1-氨基环丙烷羧酸处理,生长素的转运不受影响。令人惊讶的是,乙烯不敏感2-1(ein2-1)和ein2-5突变显着减少了下胚轴的重力弯曲。但是,耐乙烯1-3 etr1 - 3 )突变不会显着影响下胚轴重力反应。此外, etr1 ein2 突变都不能消除在 rcn1 下胚轴中观察到的加速重力运动,这表明野生型重力反应和重力增强 rcn1 中的响应不需要完整的乙烯信号通路。因此,我们得出的结论是,RCN1蛋白通过对黄化幼苗中乙烯合成的负调控来影响总体下胚轴伸长,并且RCN1和EIN2通过独立途径调节下胚轴重力和乙烯反应。

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