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Zhong-ling Liu

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Open access Aug 2026

The BpZAT10-BpWRKY31 module enhances the drought tolerance and herbivore resistance of Betula platyphylla through the jasmonic acid signalling pathway

Birch (Betula platyphylla) is an important native species widely distributed in northeastern China. It faces various adverse environmental challenges during its natural growth, including drought and herbivory. Here, we identified a transcriptional regulatory module in birch, BpZAT10-BpWRKY31, that increases drought tolerance and gypsy moth (Lymantria dispar) resistance. Overexpressing BpZAT10 or BpWRKY31 improved ROS scavenging, reduced oxidative damage under drought conditions, and increased the antifeedant effects against the gypsy moth in both selective and nonselective antifeeding experiments, whereas knockout lines exhibited heightened susceptibility. BpZAT10 binds directly to the TGACG motif in the promoter of BpWRKY31, a downstream gene in the BpZAT10-centred gene regulatory network, thereby activating its expression. BpWRKY31 in turn promotes jasmonic acid (JA) accumulation and activates flavonoid biosynthesis-related pathways by binding to W-box elements in the promoters of JA biosynthesis-related genes (BpLOX15, BpAOS1, BpAOS2, and BpAOC4) and flavonoid pathway-initiating phenylalanine ammonia lyase genes (BpPAL4 and BpPAL5). Inhibition of JA reduced the stress resistance phenotypes associated with BpZAT10 and BpWRKY31 overexpression, supporting the involvement of JA signalling in this module. In conclusion, this study reveals a hierarchically organised BpZAT10-BpWRKY31 module that couples JA signalling and flavonoid biosynthesis-related pathways, laying a theoretical foundation for the further cultivation of trees with excellent stress resistance.

Wenfang Dong, Qingjun Xie, Wenjun Ma et al. · 0 citations
Jul 2026

BpMAPK6-mediated phosphorylation of BpDRE1B enhances drought tolerance in Betula platyphylla via activating GST for antioxidant defense.

Drought is a major environmental factor that affects Betula platyphylla (birch) survival and growth and even leads to death in severe cases. However, the genetic components underlying birch drought tolerance are largely unknown. Here, we identified and characterized a DREB gene (BpDRE1B) in birch, and overexpression of BpDRE1B improved the drought tolerance of transgenic birch. Through analysis of the previously reported drought regulatory network of birch, it was found that glutathione metabolism serves as a key pathway underlying BpDRE1B-mediated drought stress responses. Yeast one-hybrid (Y1H), electrophoretic mobility shift assay (EMSA), chromatin immunoprecipitation-qPCR (ChIP-qPCR), and dual-luciferase (dual-LUC) assays confirmed that BpDRE1B regulates the expression of BpGSTU8 by binding to its DRE element. Consistently, overexpression of BpGSTU8 (OE-BpGSTU8) was identified to increase the activity of glutathione-S-transferase to clear reactive oxygen species (ROS), thereby enhancing the drought resistance of birch. The protein interaction analysis revealed that BpDRE1B interacts with BpMAPK6, a kinase involved in stress signaling. Moreover, BpMAPK6-mediated phosphorylation of BpDRE1B enhanced its ability to activate BpGSTU8 expression. Collectively, our findings demonstrate that BpDRE1B positively regulates drought tolerance in birch by upregulating BpGSTU8, highlighting its crucial role in drought adaptation and providing a theoretical foundation for breeding drought-resistant birch varieties.

Wenshuo Gao, Zhicheng Zheng, Yingming Huang et al. · 0 citations

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