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Ethylene Inhibits Root Elongation during Alkaline Stress through AUXIN1 and Associated Changes in Auxin Accumulation

机译:乙烯通过AUXIN1抑制碱性胁迫期间的根伸长和相关的生长素积累变化

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摘要

Soil alkalinity causes major reductions in yield and quality of crops worldwide. The plant root is the first organ sensing soil alkalinity, which results in shorter primary roots. However, the mechanism underlying alkaline stress-mediated inhibition of root elongation remains to be further elucidated. Here, we report that alkaline conditions inhibit primary root elongation of Arabidopsis (Arabidopsis thaliana) seedlings by reducing cell division potential in the meristem zones and that ethylene signaling affects this process. The ethylene perception antagonist silver (Ag+) alleviated the inhibition of root elongation by alkaline stress. Moreover, the ethylene signaling mutants ethylene response1-3 (etr1-3), ethylene insensitive2 (ein2), and ein3-1 showed less reduction in root length under alkaline conditions, indicating a reduced sensitivity to alkalinity. Ethylene biosynthesis also was found to play a role in alkaline stress-mediated root inhibition; the ethylene overproducer1-1 mutant, which overproduces ethylene because of increased stability of 1-AMINOCYCLOPROPANE-1-CARBOXYLIC ACID SYNTHASE5, was hypersensitive to alkaline stress. In addition, the ethylene biosynthesis inhibitor cobalt (Co2+) suppressed alkaline stress-mediated inhibition of root elongation. We further found that alkaline stress caused an increase in auxin levels by promoting expression of auxin biosynthesis-related genes, but the increase in auxin levels was reduced in the roots of the etr1-3 and ein3-1 mutants and in Ag+/Co2+-treated wild-type plants. Additional genetic and physiological data showed that AUXIN1 (AUX1) was involved in alkaline stress-mediated inhibition of root elongation. Taken together, our results reveal that ethylene modulates alkaline stress-mediated inhibition of root growth by increasing auxin accumulation by stimulating the expression of AUX1 and auxin biosynthesis-related genes.
机译:土壤碱度导致全世界农作物的产量和质量大幅下降。植物根是感知土壤碱度的第一个器官,导致根部较短。但是,碱性胁迫介导的根伸长抑制的机制尚待进一步阐明。在这里,我们报告说碱性条件通过降低分生组织区域中的细胞分裂潜能来抑制拟南芥(Arabidopsis thaliana)幼苗的初生根伸长,并且乙烯信号传导影响这一过程。乙烯感知拮抗剂银(Ag + )减轻了碱性胁迫对根伸长的抑制作用。此外,乙烯信号突变体乙烯响应1-3(etr1-3),乙烯不敏感2(ein2)和ein3-1在碱性条件下根长减少较少,表明对碱性的敏感性降低。还发现乙烯的生物合成在碱性胁迫介导的根抑制中起作用。乙烯过度生产者1-1突变体由于1-酰胺基环丙烷-1羧酸合成酶5的稳定性提高而过度生产乙烯,它对碱胁迫高度敏感。此外,乙烯生物合成抑制剂钴(Co 2 + )抑制了碱胁迫对根伸长的抑制作用。我们进一步发现,碱性胁迫通过促进生长素生物合成相关基因的表达而导致生长素水平的升高,但是在etr1-3和ein3-1突变体的根以及Ag +中,生长素水平的升高被降低了。 / Co 2 + 处理的野生型植物。其他遗传和生理数据表明AUXIN1(AUX1)参与了碱性胁迫介导的根伸长抑制。两者合计,我们的结果表明,乙烯通过刺激AUX1和生长素生物合成相关基因的表达来增加生长素的积累,从而调节碱性胁迫介导的对根生长的抑制。

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