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The Arabidopsis Aux/IAA Protein Family Has Diversified in Degradation and Auxin Responsiveness[W]

机译:拟南芥Aux / IAA蛋白家族在降解和生长素响应性方面各不相同[W]

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摘要

Rapid, auxin-responsive degradation of multiple auxin/indole-3-acetic acid (Aux/IAA) proteins is essential for plant growth and development. Domain II residues were previously shown to be required for the degradation of several Arabidopsis thaliana Aux/IAA proteins. We examined the degradation of additional full-length family members and the proteolytic importance of N-terminal residues outside domain II using luciferase (LUC) fusions. Elimination of domain I did not affect degradation. However, substituting an Arg for a conserved Lys between domains I and II specifically impaired basal degradation without compromising the auxin-mediated acceleration of degradation. IAA8, IAA9, and IAA28 contain domain II and a conserved Lys, but they were degraded more slowly than previously characterized family members when expressed as LUC fusions, suggesting that sequences outside domain II influence proteolysis. We analyzed the degradation of IAA31, with a region somewhat similar to domain II but without the conserved Lys, and of IAA20, which lacks domain II and the conserved Lys. Both IAA20:LUC and epitope-tagged IAA20 were long-lived, and their longevity was not influenced by auxin. Epitope-tagged IAA31 was long-lived, like IAA20, but by contrast, it showed accelerated degradation in response to auxin. The existence of long-lived and auxin-insensitive Aux/IAA proteins suggeststhat they may play a novel role in auxin signaling.
机译:生长素/吲哚-3-乙酸(Aux / IAA)多种蛋白质的生长素响应性快速降解对于植物生长和发育至关重要。先前显示域II残基是几种拟南芥Aux / IAA蛋白降解所必需的。我们研究了使用荧光素酶(LUC)融合的其他全长家族成员的降解和域II外的N末端残基的蛋白水解重要性。域I的消除不影响降级。但是,在结构域I和II之间用Arg取代保守的Lys会特别损害基础降解,而不会损害生长素介导的降解加速。 IAA8,IAA9和IAA28包含结构域II和保守的Lys,但当表达为LUC融合蛋白时,它们的降解速度比以前表征的家族成员更慢,这表明结构域II外的序列影响蛋白水解。我们分析了IAA31的降解,IAA31的降解与域II相似,但没有保守的Lys,而IAA20的降解则缺乏域II和保守的Lys。 IAA20:LUC和带有表位标签的IAA20都是长寿的,其寿命不受生长素的影响。带有抗原决定簇的IAA31与IAA20一样,寿命长,但是相比之下,它对生长素的反应却加速了降解。长寿且对生长素不敏感的Aux / IAA蛋白的存在表明它们可能在生长素信号转导中起新作用。

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