Hydrogen peroxide burst triggers accumulation of jasmonates and salicylic acid inducing sesquiterpene biosynthesis in wounded Aquilaria sinesis

Copyright © 2019 Elsevier GmbH. All rights reserved.

Bibliographische Detailangaben
Veröffentlicht in:Journal of plant physiology. - 1979. - 234-235(2019) vom: 15. März, Seite 167-175
1. Verfasser: Lv, Feifei (VerfasserIn)
Weitere Verfasser: Li, Shanshan, Feng, Jian, Liu, Peiwei, Gao, Zhihui, Yang, Yun, Xu, Yanhong, Wei, Jianhe
Format: Online-Aufsatz
Sprache:English
Veröffentlicht: 2019
Zugriff auf das übergeordnete Werk:Journal of plant physiology
Schlagworte:Journal Article Ethylene Hydrogen peroxide Jasmonic acid Salicylic acid Sesquiterpene Cyclopentanes Ethylenes Oxylipins Sesquiterpenes mehr... jasmonic acid 6RI5N05OWW ethylene 91GW059KN7 Hydrogen Peroxide BBX060AN9V Salicylic Acid O414PZ4LPZ
Beschreibung
Zusammenfassung:Copyright © 2019 Elsevier GmbH. All rights reserved.
Agarwood, a non-timber fragrant wood, is produced in wounded Aquilaria trees and widely used in perfume, incense, and medicine. Sesquiterpene is one of its main active compounds. It has been demonstrated that hydrogen peroxide (H2O2) plays a role in promoting agarwood sesquiterpene biosynthesis, but little is known about its signaling pathway. In this study, the pruning of actively growing saplings of A. sinensis resulted in an H2O2 burst and the accumulation of jasmonic acid (JA), salicylic acid (SA), and ethylene (ET), which was followed by the up-regulation of sesquiterpene synthase and the production of sesquiterpene in the pruned stems. This process could be enhanced by absorbed H2O2 and inhibited by an H2O2 scavenger (ascorbate, AsA) in pruned stems, although the concentration of ET and transcription of ET-related synthase genes remained unaffected. These results confirmed that the H2O2 burst in wounded stems triggered JA and SA accumulation to promote agarwood sesquiterpene biosynthesis. ET was also activated by injury that was independent with H2O2. All results excavated a full-scale signaling transduction nets among multiple stress signals during wound-induced agarwood production in A. sinensis and provide a new insight into improving the artificial technology of agarwood production
Beschreibung:Date Completed 28.03.2019
Date Revised 30.09.2020
published: Print-Electronic
Citation Status MEDLINE
ISSN:1618-1328
DOI:10.1016/j.jplph.2019.02.006