Characterization of gossypol biosynthetic pathway

Author:

Tian Xiu,Ruan Ju-Xin,Huang Jin-Quan,Yang Chang-QingORCID,Fang Xin,Chen Zhi-Wen,Hong Hui,Wang Ling-Jian,Mao Ying-Bo,Lu Shan,Zhang Tian-Zhen,Chen Xiao-Ya

Abstract

Gossypol and related sesquiterpene aldehydes in cotton function as defense compounds but are antinutritional in cottonseed products. By transcriptome comparison and coexpression analyses, we identified 146 candidates linked to gossypol biosynthesis. Analysis of metabolites accumulated in plants subjected to virus-induced gene silencing (VIGS) led to the identification of four enzymes and their supposed substrates. In vitro enzymatic assay and reconstitution in tobacco leaves elucidated a series of oxidative reactions of the gossypol biosynthesis pathway. The four functionally characterized enzymes, together with (+)-δ-cadinene synthase and the P450 involved in 7-hydroxy-(+)-δ-cadinene formation, convert farnesyl diphosphate (FPP) to hemigossypol, with two gaps left that each involves aromatization. Of six intermediates identified from the VIGS-treated leaves, 8-hydroxy-7-keto-δ-cadinene exerted a deleterious effect in dampening plant disease resistance if accumulated. Notably, CYP71BE79, the enzyme responsible for converting this phytotoxic intermediate, exhibited the highest catalytic activity among the five enzymes of the pathway assayed. In addition, despite their dispersed distribution in the cotton genome, all of the enzyme genes identified show a tight correlation of expression. Our data suggest that the enzymatic steps in the gossypol pathway are highly coordinated to ensure efficient substrate conversion.

Funder

National Natural Science Foundation of China

Chinese Academy of Sciences

Ministry of Science and Technology of the People's Republic of China

Ministry of Agriculture of the People's Republic of China

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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