Author:
Wang Shuo,Zhao XueLei,Li Chang,Dong Jing,Ma JiaCheng,Long YueHong,Xing ZhaoBin
Abstract
AbstractPlant growth and development can be significantly impacted by drought stress. Plants will adjust the synthesis and accumulation of secondary metabolites to improve survival in times of water constraint. Simultaneously, drought stress can lead to modifications in the DNA methylation status of plants, and these modifications can directly impact gene expression and product synthesis by changing the DNA methylation status of functional genes involved in secondary metabolite synthesis. However, further research is needed to fully understand the extent to which DNA methylation modifies the content of secondary metabolites to mediate plants’ responses to drought stress, as well as the underlying mechanisms involved. Our study found that in Eleutherococcus senticosus (E. senticosus), moderate water deprivation significantly decreased DNA methylation levels throughout the genome and at the promoters of EsFPS, EsSS, and EsSE. Transcription factors like EsMYB-r1, previously inhibited by DNA methylation, can re-bind to the EsFPS promotor region following DNA demethylation. This process promotes gene expression and, ultimately, saponin synthesis and accumulation. The increased saponin levels in E. senticosus acted as antioxidants, enhancing the plant’s adaptability to drought stress.
Funder
Natural Science Foundation of Hebei Province
Central Guidance for Local Science and Technology Development Fund Projects
National Natural Science Foundation of China
Publisher
Springer Science and Business Media LLC
Reference66 articles.
1. Almut A. In: Climate Change and Land: an IPCC special report on climate change, desertification, land degradation, sustainable land management, food security, and greenhouse gas fluxes in terrestrial ecosystems.IPCC. 2019.
2. He X, Xu L, Pan C et al. Drought resistance of Camellia oleifera under drought stress: changes in physiology and growth characteristics. PLoS One 2020,15(7)e0235795.
3. Omidi H, Shams H, Seif Sahandi M, et al. Balangu (Lallemantia sp.) growth and physiology under field drought conditions affecting plant medicinal content. Plant Physiol Biochem. 2018;130:641–6.
4. Muhammad AM, Waseem M, Jakada BH, et al. Mechanisms of abscisic acid-mediated Drought stress responses in plants. Int J Mol Sci. 2022;23(3):1084.
5. Sato H, Mizoi J, Shinozaki K, et al. Complex plant responses to drought and heat stress under climate change. Plant J. 2024. https://doi.org/10.1111/tpj.16612.
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