Literature DB >> 32772407

Integrative omic and transgenic analyses reveal the positive effect of ultraviolet-B irradiation on salvianolic acid biosynthesis through upregulation of SmNAC1.

Xiaojian Yin1,2, Hui Fan1, Yan Chen2, Lan-Zhu Li2, Wei Song1, Yuanming Fan2, Wei Zhou2, Gaoxiang Ma2, Raphael N Alolga2, Weiqiang Li3, Baolong Zhang4, Ping Li2, Lam-Son P Tran5,6, Xu Lu2, Lian-Wen Qi2.   

Abstract

Salvianolic acids (SalAs), a group of secondary metabolites in Salvia miltiorrhiza, are widely used for treating cerebrovascular diseases. Their biosynthesis is modulated by a variety of abiotic factors, including ultraviolet-B (UV-B) irradiation; however, the underlying mechanisms remain largely unknown. Here, an integrated metabolomic, proteomic, and transcriptomic approach coupled with transgenic analyses was employed to dissect the mechanisms underlying UV-B irradiation-induced SalA biosynthesis. Results of metabolomics showed that 28 metabolites, including 12 SalAs, were elevated in leaves of UV-B-treated S. miltiorrhiza. Meanwhile, the contents of several phytohormones, including jasmonic acid and salicylic acid, which positively modulate the biosynthesis of SalAs, also increased in UV-B-treated S. miltiorrhiza. Consistently, 20 core biosynthetic enzymes and numerous transcription factors that are involved in SalA biosynthesis were elevated in treated samples as indicated by a comprehensive proteomic analysis. Correlation and gene expression analyses demonstrated that the NAC1 gene, encoding a NAC transcriptional factor, was positively involved in UV-B-induced SalA biosynthesis. Accordingly, overexpression and RNA interference of NAC1 increased and decreased SalA contents, respectively, through regulation of key biosynthetic enzymes. Furthermore, ChIP-qPCR and Dual-LUC assays showed that NAC1 could directly bind to the CATGTG and CATGTC motifs present in the promoters of the SalA biosynthesis-related genes PAL3 and TAT3, respectively, and activate their expression. Our results collectively demonstrate that NAC1 plays a crucial role in UV-B irradiation-induced SalA biosynthesis. Taken together, our findings provide mechanistic insights into the UV-B-induced SalA biosynthesis in S. miltiorrhiza, and shed light on a great potential for the development of SalA-abundant varieties through genetic engineering.
© 2020 Society for Experimental Biology and John Wiley & Sons Ltd.

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Keywords:  NAC1; Salvia miltiorrhiza; UV-B radiation; metabolomics; proteomics; salvianolic acids; transcriptomics

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Year:  2020        PMID: 32772407     DOI: 10.1111/tpj.14952

Source DB:  PubMed          Journal:  Plant J        ISSN: 0960-7412            Impact factor:   6.417


  2 in total

1.  Phosphoproteomics Reveals Regulation of Secondary Metabolites in Mahonia bealei Exposed to Ultraviolet-B Radiation.

Authors:  Amin Liu; Shengzhi Liu; Yaohan Li; Minglei Tao; Haote Han; Zhuoheng Zhong; Wei Zhu; Jingkui Tian
Journal:  Front Plant Sci       Date:  2022-01-11       Impact factor: 5.753

Review 2.  Morphophysiological and Proteomic Responses on Plants of Irradiation with Electromagnetic Waves.

Authors:  Zhuoheng Zhong; Xin Wang; Xiaojian Yin; Jingkui Tian; Setsuko Komatsu
Journal:  Int J Mol Sci       Date:  2021-11-12       Impact factor: 5.923

  2 in total

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