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January 17, 2026Plants1 citationsOpen Access

Recent Advances in Transcription Factor–Mediated Regulation of Salvianolic Acid Biosynthesis in Salvia miltiorrhiza

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SCSong ChenFPFang PengSTShan Tao

Key Points

  • The aim is to summarize the transcriptional regulation of salvianolic acid biosynthesis in Salvia miltiorrhiza.
  • Reviewed transcription factor families involved in biosynthesis regulation
  • Analyzed the phenylpropanoid and tyrosine-derived pathways
  • Identified positive and negative regulators affecting gene expression
  • Discussed strategies for integrating omics and functional genomics
  • Key regulators SmMYB111, SmMYC2, and SmTGA2 enhance phenolic acid accumulation
  • Negative regulators like SmMYB4 and SmMYB39 reduce pathway expression
  • Highlighted the importance of hormone signalling and transcriptional control
  • Proposed future directions for improving salvianolic acid yield through genome editing

Abstract

Salvia miltiorrhiza Bunge is a traditional Chinese medicinal plant whose roots are rich in water-soluble phenolic acids. Rosmarinic acid and salvianolic acid B are representative components that confer antibacterial, antioxidant, and cardio-cerebrovascular protective activities. However, these metabolites often accumulate at low and unstable levels in planta, which limits their efficient development and use. This review summarises recent advances in understanding salvianolic acid biosynthesis and its transcriptional regulation in S. miltiorrhiza. Current evidence supports a coordinated pathway composed of the phenylpropanoid route and a tyrosine-derived branch, which converge to generate rosmarinic acid and subsequently more complex derivatives through oxidative coupling reactions. Key findings on transcription factor families that fine-tune pathway flux by regulating core structural genes are synthesised. Representative positive regulators such as SmMYB111, SmMYC2, and SmTGA2 activate key nodes (e.g., PAL, TAT/HPPR, RAS, and CYP98A14) to promote phenolic acid accumulation. Conversely, negative regulators such as SmMYB4 and SmMYB39 repress pathway genes and/or interfere with activator complexes. Major regulatory features include hormone-inducible signalling, cooperative regulation through transcription factor complexes, and emerging post-transcriptional and post-translational controls. Future directions and challenges are discussed, including overcoming regulatory redundancy and strong spatiotemporal specificity of transcriptional control. Integrating spatial and single-cell omics with functional genomics (e.g., genome editing and rational TF stacking) is highlighted as a promising strategy to enable predictive metabolic engineering for the stable, high-yield production of salvianolic acid-type compounds.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/696b25f3d2a12237a9349399https://doi.org/10.3390/plants15020263
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