SmGA2ox4 plays a positive role in improving the salt tolerance and tanshinone accumulation of Salvia miltiorrhiza

Sijia Zeng , Yifan Li , Shiying Wang , Yihua Liang , Zhijing Yu , Zisong Yang , Pengda Ma , Jingying Liu

Horticulture Research ›› 2026, Vol. 13 ›› Issue (6) : 58

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Horticulture Research ›› 2026, Vol. 13 ›› Issue (6) :58 DOI: 10.1093/hr/uhag058
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SmGA2ox4 plays a positive role in improving the salt tolerance and tanshinone accumulation of Salvia miltiorrhiza
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Abstract

Salvia miltiorrhiza, a medicinal plant of high value, faces significant yield and quality losses due to salt stress. Identifying salt tolerance genes is therefore essential for breeding resilient varieties. Gibberellin (GA) metabolism and signaling are modulated by diverse factors, with GA 2-oxidase (GA2ox) playing a key role in stress adaptation by inactivating GA and fine-tuning growth under adverse conditions. In this work, we identified 12 GA2ox genes in S. miltiorrhiza and generated an SmGA2ox4 transgenic line. Heterologous expression in Arabidopsis thaliana improved salt tolerance through enhanced germination, root growth, antioxidant activity, and stress-related physiological markers. Similar results were observed in transgenic hairy roots of S. miltiorrhiza. High-performance liquid chromatography (HPLC) analysis further showed that SmGA2ox4 overexpression promoted tanshinone accumulation but suppressed salvianolic acid biosynthesis, whereas RNA interference (RNAi)-mediated silencing had the opposite effect. Thus, SmGA2ox4 acts as a dual-function regulator, enhancing both salt tolerance and tanshinone production. This study establishes a novel link between GA2ox-mediated stress response and secondary metabolism in S. miltiorrhiza, providing a basis for engineering stress-resistant, high-quality varieties.

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Sijia Zeng, Yifan Li, Shiying Wang, Yihua Liang, Zhijing Yu, Zisong Yang, Pengda Ma, Jingying Liu. SmGA2ox4 plays a positive role in improving the salt tolerance and tanshinone accumulation of Salvia miltiorrhiza. Horticulture Research, 2026, 13 (6) : 58 DOI:10.1093/hr/uhag058

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Acknowledgements

This work was supported by the Natural Science Foundation of Jilin Provincial (20250102305JC) and Sichuan Provincial Science and Technology Program Project (2025ZNSFSC0615), College Students’ Innovative Entrepreneurial Training Plan Program (XN2025013032).

Author contributions

Z.S.Y., P.D.M., and J.Y.L. conceived and designed the research. S.J.Z. collected data and performed bioinformatics analysis and as well as wrote the manuscript. Y.F.L., S.Y.Y., and Y.H.L. did the data collation.

Data availability

The datasets supporting the results of this article are included within the article and its supplementary file.

Conflicts of interest statement

The authors have no conflicts of interest to declare.

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