4.7 Article

SmKFB5 protein regulates phenolic acid biosynthesis by controlling the degradation of phenylalanine ammonia-lyase in Salvia miltiorrhiza

期刊

JOURNAL OF EXPERIMENTAL BOTANY
卷 72, 期 13, 页码 4915-4929

出版社

OXFORD UNIV PRESS
DOI: 10.1093/jxb/erab172

关键词

KFB; phenolic acids; phenylalanine ammonia-Iyase; post-translational regulation; Salvia miltiorrhiza; ubiqitin-26S proteasome

资金

  1. National Natural Science Foundation of China [81773835]
  2. Zhejiang Provincial Natural Science Foundation of China [LR21H280002, GN21C020017]

向作者/读者索取更多资源

The study revealed that SmKFB5 in Salvia miltiorrhiza mediates the proteolytic turnover of PAL via the ubiquitin-26S proteasome pathway, negatively regulating phenolic acid accumulation. Additionally, methyl jasmonate enhances phenolic acid biosynthesis by consolidating both transcriptional and post-translational regulatory mechanisms.
Phenolic acids are the major secondary metabolites and significant bioactive constituents of the medicinal plant Salvia miltiorrhiza. Many enzyme-encoding genes and transcription factors involved in the biosynthesis of phenolic acids have been identified, but the underlying post-translational regulatory mechanisms are poorly understood. Here, we demonstrate that the S. miltiorrhiza Kelch repeat F-box protein SmKFB5 physically interacts with three phenylalanine ammonia-Iyase (PAL) isozymes and mediates their proteolytic turnover via the ubiquitin-26S proteasome pathway. Disturbing the expression of SmKFB5 reciprocally affected the abundance of SmPAL protein and the accumulation of phenolic acids, suggesting that SmKFB5 is a post-translational regulator responsible for the turnover of PAL and negatively controlling phenolic acids. Furthermore, we discovered that treatment of the hairy root of S. miltiorrhiza with methyl jasmonate suppressed the expression of SmKFB5 while inducing the transcription of SmPAL1 and SmPAL3. These data suggested that methyl jasmonate consolidated both transcriptional and post-translational regulation mechanisms to enhance phenolic acid biosynthesis. Taken together, our results provide insights into the molecular mechanisms by which SmKFB5 mediates the regulation of phenolic acid biosynthesis by jasmonic acid, and suggest valuable targets for plant breeders in tailoring new cultivars.

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