Arabidopsis mutants in the C-S lyase of glucosinolate biosynthesis establish a critical role for indole-3-acetaldoxime in auxin homeostasis

被引:253
|
作者
Mikkelsen, MD
Naur, P
Halkier, BA
机构
[1] Royal Vet & Agr Univ, Dept Plant Biol, Plant Biochem Lab, DK-1871 Copenhagen, Denmark
[2] Royal Vet & Agr Univ, Ctr Mol Plant Physiol PlaCe, DK-1871 Copenhagen, Denmark
来源
PLANT JOURNAL | 2004年 / 37卷 / 05期
关键词
auxin; glucosinolates; indole-3-acetaldoxime; superroot1; C-S lyase; Arabidopsis;
D O I
10.1111/j.1365-313X.2004.02002.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
We report characterization of SUPERROOT1 (SUR1) as the C-S lyase in glucosinolate biosynthesis. This is evidenced by selective metabolite profiling of sur1, which is completely devoid of aliphatic and indole glucosinolates. Furthermore, following in vivo feeding with radiolabeled p-hydroxyphenylacetaldoxime to the sur1 mutant, the corresponding C-S lyase substrate accumulated. C-S lyase activity of recombinant SUR1 heterologously expressed in Escherichia coli was demonstrated using the C-S lyase substrate djenkolic acid. The abolishment of glucosinolates in sur1 indicates that the SUR1 function is not redundant and thus SUR1 constitutes a single gene family. This suggests that the 'high-auxin' phenotype of sur1 is caused by accumulation of endogenous C-S lyase substrates as well as aldoximes, including indole-3-acetaldoxime (IAOx) that is channeled into the main auxin indole-3-acetic acid (IAA). Thereby, the cause of the 'high-auxin' phenotype of sur1 mutant resembles that of two other 'high-auxin' mutants, superroot2 (sur2) and yucca1. Our findings provide important insight to the critical role IAOx plays in auxin homeostasis as a key branching point between primary and secondary metabolism, and define a framework for further dissection of auxin biosynthesis.
引用
收藏
页码:770 / 777
页数:8
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