首页> 外文OA文献 >Mutations in an Auxin Receptor Homolog AFB5 and in SGT1b Confer Resistance to Synthetic Picolinate Auxins and Not to 2,4-Dichlorophenoxyacetic Acid or Indole-3-Acetic Acid in Arabidopsis[W]
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Mutations in an Auxin Receptor Homolog AFB5 and in SGT1b Confer Resistance to Synthetic Picolinate Auxins and Not to 2,4-Dichlorophenoxyacetic Acid or Indole-3-Acetic Acid in Arabidopsis[W]

机译:生长素受体同源物AFB5和SGT1b中的突变赋予拟南芥中合成的吡啶甲酸生长素而不是2,4-二氯苯氧基乙酸或吲哚-3-乙酸的抗性[W]

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摘要

Although a wide range of structurally diverse small molecules can act as auxins, it is unclear whether all of these compounds act via the same mechanisms that have been characterized for 2,4-dichlorophenoxyacetic acid (2,4-D) and indole-3-acetic acid (IAA). To address this question, we used a novel member of the picolinate class of synthetic auxins that is structurally distinct from 2,4-D to screen for Arabidopsis (Arabidopsis thaliana) mutants that show chemically selective auxin resistance. We identified seven alleles at two distinct genetic loci that conferred significant resistance to picolinate auxins such as picloram, yet had minimal cross-resistance to 2,4-D or IAA. Double mutants had the same level and selectivity of resistance as single mutants. The sites of the mutations were identified by positional mapping as At4g11260 and At5g49980. At5g49980 is previously uncharacterized and encodes auxin signaling F-box protein 5, one of five homologs of TIR1 in the Arabidopsis genome. TIR1 is the recognition component of the Skp1-cullin-F-box complex associated with the ubiquitin-proteasome pathway involved in auxin signaling and has recently been shown to be a receptor for IAA and 2,4-D. At4g11260 encodes the tetratricopeptide protein SGT1b that has also been associated with Skp1-cullin-F-box-mediated ubiquitination in auxin signaling and other pathways. Complementation of mutant lines with their corresponding wild-type genes restored picolinate auxin sensitivity. These results show that chemical specificity in auxin signaling can be conferred by upstream components of the auxin response pathway. They also demonstrate the utility of genetic screens using structurally diverse chemistries to uncover novel pathway components.
机译:尽管各种各样结构上不同的小分子都可以充当植物生长素,但尚不清楚所有这些化合物是否都通过针对2,4-二氯苯氧基乙酸(2,4-D)和吲哚-3-的相同机理起作用乙酸(IAA)。为了解决这个问题,我们使用了结构上不同于2,4-D的吡啶甲酸类合成植物生长素的新型成员,以筛选显示对化学生长素具有抗性的拟南芥(Arabidopsis thaliana)突变体。我们在两个不同的遗传位点上鉴定了七个等位基因,这些位点赋予了对吡啶甲酸生长素(如吡咯仑)显着的抗性,但对2,4-D或IAA的交叉抗性却最小。双突变体具有与单突变体相同的抗性水平和选择性。通过位置映射将突变的位点鉴定为At4g11260和At5g49980。 At5g49980以前是未鉴定的,编码拟南芥基因组中TIR1的五个同系物之一,生长素信号传导F-box蛋白5。 TIR1是Skp1-cullin-F-box复合物的识别组分,与生长素信号传导中涉及的泛素-蛋白酶体途径有关,最近被证明是IAA和2,4-D的受体。 At4g11260编码四肽多肽蛋白SGT1b,该蛋白也已在生长素信号传导和其他途径中与Skp1-cullin-F-box介导的泛素化相关。突变株与其相应的野生型基因的互补恢复了吡啶甲酸生长素的敏感性。这些结果表明,生长素应答途径的上游组分可以赋予生长素信号传导中的化学特异性。他们还证明了利用结构多样的化学方法揭示新途径成分的遗传筛选的实用性。

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