Reactive oxygen species act as the key signaling molecules mediating light-induced anthocyanin biosynthesis in Eucalyptus

Light plays a pivotal role in regulating anthocyanin biosynthesis in plants, and the early light-responsive signals that initiate anthocyanin biosynthesis remain to be elucidated. In this study, we showed that the anthocyanin biosynthesis in Eucalyptus is hypersensitive to increased light intensity....

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Veröffentlicht in:Plant physiology and biochemistry 2024-07, Vol.212, p.108715, Article 108715
Hauptverfasser: Zhu, Linhui, Liao, Yuwu, Zhang, Tingting, Zeng, Zhiyu, Wang, Jianzhong, Duan, Lanjuan, Chen, Xin, Lin, Kai, Liang, Xiuqing, Han, Zewei, Huang, Yunkai, Wu, Wenfei, Hu, Hao, Xu, Zeng-Fu, Ni, Jun
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Sprache:eng
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Zusammenfassung:Light plays a pivotal role in regulating anthocyanin biosynthesis in plants, and the early light-responsive signals that initiate anthocyanin biosynthesis remain to be elucidated. In this study, we showed that the anthocyanin biosynthesis in Eucalyptus is hypersensitive to increased light intensity. The combined transcriptomic and metabolomic analyses were conducted on Eucalyptus leaves after moderate (ML; 100 μmol m−2 s−1) and high (HL; 300 μmol m−2 s−1) light intensity treatments. The results identified 1940, 1096, 1173, and 2756 differentially expressed genes at 6, 12, 24, and 36 h after HL treatment, respectively. The metabolomic results revealed the primary anthocyanin types, and other differentially accumulated flavonoids and phenylpropane intermediates that were produced in response to HL, which well aligned with the transcriptome results. Moreover, biochemical analysis showed that HL inhibited peroxidase activity and increased the ROS level in Eucalyptus leaves. ROS depletion through co-application of the antioxidants rutin, uric acid, and melatonin significantly reduced, and even abolished, anthocyanin biosynthesis induced by HL treatment. Additionally, exogenous application of hydrogen peroxide efficiently induced anthocyanin biosynthesis within 24 h, even under ML conditions, suggesting that ROS played a major role in activating anthocyanin biosynthesis. A HL-responsive MYB transcription factor EgrMYB113 was identified to play an important role in regulating anthocyanin biosynthesis by targeting multiple anthocyanin biosynthesis genes. Additionally, the results demonstrated that gibberellic acid and sugar signaling contributed to HL-induced anthocyanin biosynthesis. Conclusively, these results suggested that HL triggers multiple signaling pathways to induce anthocyanin biosynthesis, with ROS acting as indispensable mediators in Eucalyptus. •Eucalyptus exhibits hypersensitivity in anthocyanin biosynthesis in response to high light environment conditions.•ROS induced by high light is responsible for the initiation of anthocyanin biosynthesis.•EgrMYB113 is a high-light- and ROS-responsive transcription factor, controlling anthocyanin biosynthesis in Eucalyptus by targeting multiple anthocyanin biosynthesis pathway genes.•Gibberellin and sugar signaling pathways also contribute to high light-induced anthocyanin biosynthesis in Eucalyptus.
ISSN:0981-9428
1873-2690
1873-2690
DOI:10.1016/j.plaphy.2024.108715