牵牛花
生物化学
生物
泛素连接酶
过氧化物酶体
生物合成
DNA连接酶
氧化磷酸化
酶
泛素
基因
作者
Antje Klempien,Yasuhisa Kaminaga,Anthony Qualley,Dinesh A. Nagegowda,Joshua R. Widhalm,Irina Orlova,Ajit Kumar Shasany,Goro Taguchi,Christine M. Kish,Bruce R. Cooper,John C. D’Auria,David Rhodes,Eran Pichersky,Natalia Dudareva
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2012-05-01
卷期号:24 (5): 2015-2030
被引量:153
标识
DOI:10.1105/tpc.112.097519
摘要
Biosynthesis of benzoic acid from Phe requires shortening of the side chain by two carbons, which can occur via the β-oxidative or nonoxidative pathways. The first step in the β-oxidative pathway is cinnamoyl-CoA formation, likely catalyzed by a member of the 4-coumarate:CoA ligase (4CL) family that converts a range of trans-cinnamic acid derivatives into the corresponding CoA thioesters. Using a functional genomics approach, we identified two potential CoA-ligases from petunia (Petunia hybrida) petal-specific cDNA libraries. The cognate proteins share only 25% amino acid identity and are highly expressed in petunia corollas. Biochemical characterization of the recombinant proteins revealed that one of these proteins (Ph-4CL1) has broad substrate specificity and represents a bona fide 4CL, whereas the other is a cinnamate:CoA ligase (Ph-CNL). RNA interference suppression of Ph-4CL1 did not affect the petunia benzenoid scent profile, whereas downregulation of Ph-CNL resulted in a decrease in emission of benzylbenzoate, phenylethylbenzoate, and methylbenzoate. Green fluorescent protein localization studies revealed that the Ph-4CL1 protein is localized in the cytosol, whereas Ph-CNL is in peroxisomes. Our results indicate that subcellular compartmentalization of enzymes affects their involvement in the benzenoid network and provide evidence that cinnamoyl-CoA formation by Ph-CNL in the peroxisomes is the committed step in the β-oxidative pathway.
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