Water-deficit stress reprograms flavan-3-ol biosynthesis toward gallocatechin through a TgERF23–TgLAR1 module in Torreya grandis

Water-deficit stress disrupts redox homeostasis in plants, yet how flavan-3-ol biosynthesis is reprogrammed to bolster antioxidant defense remains elusive. By integrating physiological assays, metabolite profiling, transcriptomics, and transient functional analyses in Torreya grandis , this study demonstrated that water-deficit stress redirects metabolic flux toward gallocatechin, which comprises up to 65% of the quantified flavan-3-ol pool. TgLAR1 was identified as the principal leucoanthocyanidin reductase mediating this response: TgLAR1 overexpression increased gallocatechin levels and antioxidant enzyme activities, whereas virus-induced silencing diminished both. Transcriptome mining revealed that the APETALA2/ethylene-responsive factor (AP2/ERF) transcription factor TgERF23 directly binds a GCC-box motif in the TgLAR1 promoter to activate transcription. TgERF23 overexpression upregulated TgLAR1 , promoted gallocatechin accumulation, and enhanced antioxidant capacity. Conversely, TgERF23 silencing suppressed this cascade. Together, these findings establish a TgERF23–TgLAR1 regulatory module that directs branch-preferential reprogramming of flavan-3-ol metabolism toward gallocatechin under water-deficit stress. This work provides a mechanistic framework for understanding stress-responsive specialized metabolism and identifying candidate genes to improve water-deficit adaptation in woody gymnosperms.

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Publication Details

Journal
Industrial Crops and Products
Published
2026-09-30
DOI
https://doi.org/10.1016/j.indcrop.2026.124470
Primary Topic
Plant Gene Expression Analysis
Type
article
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article

Water-deficit stress reprograms flavan-3-ol biosynthesis toward gallocatechin through a TgERF23–TgLAR1 module in Torreya grandis

Ling Qin, Lili Song, Zuying Zhang, 喻卫武 et al.
Industrial Crops and Products
Plant Gene Expression Analysis
article

Water-deficit stress reprograms flavan-3-ol biosynthesis toward gallocatechin through a TgERF23–TgLAR1 module in Torreya grandis

Ling Qin, Lili Song, Zuying Zhang, 喻卫武, Yu Xing, Zhenmin Ma, Sun Yutian, Jiasheng Wu, Alisdair R. Fernie, Xiaoyan Liu, Han Tao, Ruirui Yan
article en

Abstract

Water-deficit stress disrupts redox homeostasis in plants, yet how flavan-3-ol biosynthesis is reprogrammed to bolster antioxidant defense remains elusive. By integrating physiological assays, metabolite profiling, transcriptomics, and transient functional analyses in Torreya grandis , this study demonstrated that water-deficit stress redirects metabolic flux toward gallocatechin, which comprises up to 65% of the quantified flavan-3-ol pool. TgLAR1 was identified as the principal leucoanthocyanidin reductase mediating this response: TgLAR1 overexpression increased gallocatechin levels and antioxidant enzyme activities, whereas virus-induced silencing diminished both. Transcriptome mining revealed that the APETALA2/ethylene-responsive factor (AP2/ERF) transcription factor TgERF23 directly binds a GCC-box motif in the TgLAR1 promoter to activate transcription. TgERF23 overexpression upregulated TgLAR1 , promoted gallocatechin accumulation, and enhanced antioxidant capacity. Conversely, TgERF23 silencing suppressed this cascade. Together, these findings establish a TgERF23–TgLAR1 regulatory module that directs branch-preferential reprogramming of flavan-3-ol metabolism toward gallocatechin under water-deficit stress. This work provides a mechanistic framework for understanding stress-responsive specialized metabolism and identifying candidate genes to improve water-deficit adaptation in woody gymnosperms.

Industrial Crops and ProductsVol. 252
Zhejiang A & F University (CN), Max Planck Institute of Molecular Plant Physiology (DE), Beijing University of Agriculture (CN)
Clean water and sanitation
Openalex Percentile: Top 19%
Plant Gene Expression Analysis
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