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拟南芥 gulliver1/SUPERROOT2-7 确定了生长素和油菜素内酯协同作用的代谢基础。

Arabidopsis gulliver1/SUPERROOT2-7 identifies a metabolic basis for auxin and brassinosteroid synergy.

机构信息

School of Biological Sciences, College of Natural Sciences, Seoul National University, Seoul, 151-747, Korea.

出版信息

Plant J. 2014 Dec;80(5):797-808. doi: 10.1111/tpj.12678.

DOI:10.1111/tpj.12678
PMID:25256367
Abstract

Phytohormone homeostasis is essential for proper growth and development of plants. To understand the growth mechanisms mediated by hormonal levels, we isolated a gulliver1 (gul1) mutant that had tall stature in the presence of both brassinazole and the light. The gul1 phenotype depended on functional BR biosynthesis; the genetic introduction of dwarf4, a BR biosynthetic mutation, masked the long hypocotyl phenotype of gul1. Furthermore, BR biosynthesis was dramatically enhanced, such that the level of 22-hydroxy campesterol was 5.8-fold greater in gul1. Molecular cloning revealed that gul1 was a missense mutation, resulting in a glycine to arginine change at amino acid 116 in SUPERROOT2 (CYP83B1), which converts indole acetaldoxime to an S-alkyl thiohydroximate adduct in the indole glucosinolate pathway. Auxin metabolite profiling coupled with quantitative reverse transcription polymerase chain reaction (RT-PCR) analysis of auxin biosynthetic genes revealed that gul1/sur2-7 activated multiple alternative branches of tryptophan-dependent auxin biosynthetic pathways. Furthermore, exogenous treatment of gul1/sur2-7 with BRs caused adventitious roots from hypocotyls, indicative of an increased response to BRs relative to wild-type. Different from severe alleles of sur2, gul1/sur2-7 lacked 'high-auxin' phenotypes that include stunted growth and callus-like disintegration of hypocotyl tissues. The auxin level in gul1/sur2-7 was only 1.6-fold greater than in the wild-type, whereas it was 4.2-fold in a severe allele like sur2-8. Differences in auxin content may account for the range of phenotypes observed among the sur2 alleles. This unusual allele provides long-sought evidence for a synergistic interaction between auxin and BRs in promoting growth in Arabidopsis at the level of their biosynthetic enzymes.

摘要

植物激素的动态平衡对于植物的正常生长和发育至关重要。为了理解激素水平介导的生长机制,我们分离了一个 gulliver1(gul1)突变体,该突变体在存在油菜素内酯和光照的情况下表现出高大的表型。gul1 表型依赖于 BR 生物合成的功能;矮化 4(dwarf4)的遗传引入,一种 BR 生物合成突变,掩盖了 gul1 的长下胚轴表型。此外,BR 生物合成显著增强,使得 gul1 中的 22-羟基胆固醇水平增加了 5.8 倍。分子克隆表明,gul1 是一个错义突变,导致 SUPERROOT2(CYP83B1)中的第 116 位氨基酸由甘氨酸变为精氨酸,该突变将吲哚乙肟转化为吲哚葡萄糖苷途径中的 S-烷基硫代羟肟酸加合物。生长素代谢产物分析结合生长素生物合成基因的定量反转录聚合酶链反应(RT-PCR)分析表明,gul1/sur2-7 激活了色氨酸依赖的生长素生物合成途径的多个替代分支。此外,用 BR 处理 gul1/sur2-7 会导致下胚轴产生不定根,表明相对于野生型,其对 BR 的反应增强。与 sur2 的严重等位基因不同,gul1/sur2-7 缺乏“高生长素”表型,包括生长缓慢和下胚轴组织的愈伤样解体。gul1/sur2-7 中的生长素水平仅比野生型高 1.6 倍,而像 sur2-8 这样的严重等位基因则高 4.2 倍。生长素含量的差异可能解释了 sur2 等位基因观察到的表型范围。这个不寻常的等位基因为生长素和 BR 在促进拟南芥生长的水平上的协同相互作用提供了长期以来寻求的证据。

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