4.3 Article

Characterization, Expression Profiling, and Functional Identification of a Gene Encoding Geranylgeranyl Diphosphate Synthase from Salvia miltiorrhiza

期刊

BIOTECHNOLOGY AND BIOPROCESS ENGINEERING
卷 15, 期 2, 页码 236-245

出版社

KOREAN SOC BIOTECHNOLOGY & BIOENGINEERING
DOI: 10.1007/s12257-009-0123-y

关键词

Expression analysis; functional identification; Salvia miltiorrhiza; SmGGPPS; tanshinones

资金

  1. National Natural Science Fund [3090-0110)]
  2. Shanghai education committee fund [09ZZ138, 06DZ015]
  3. Zhejiang Provincial Natural Science Fund [Y2080621]
  4. Shanghai Science and Technology Committee Project [09QH1401900, 06QA14038, 08391911800, 073158202, 075405117, 065458022, 05ZR14093]
  5. National Transgenic Organism New Variety Culture Key Project [2009ZX08012-002B]
  6. Fujian Science and Technology Committee Key Special Project [2008NZ0001-4]
  7. Leading Academic Discipline Project of Shanghai Municipal Education Commission [J50401]
  8. Shanghai Normal University [SK200830, CH030]

向作者/读者索取更多资源

Geranylgeranyl diphosphate synthase (GGPPS, EC: 2.5.1.29) catalyzes the biosynthesis of geranylgeranyl diphosphate (GGPP), which is a key precursor for diterpenes including tanshinone. In this study, a full-length cDNA encoding GGPPS was isolated from Salvia miltiorrhiza by rapid amplification of cDNA ends (RACE) for the first time, which was designated as SmGGPPS (Gen Bank Accession No. FJ643617). The full-length cDNA of SmGGPPS was 1,234 bp containing a 1,092 bp open reading frame (ORF) encoding a polypeptide of 364 amino acids. Analysis of SmGGPPS genomic DNA revealed that it contained 2 exons and 1 intron. Bioinfomiatics analyses revealed that the deduced SmGGPPS had extensive homology with other plant GGPPSs contained all 5 conserved domains and functional aspartate-rich motifs of the prenyl-transferases. Molecular modeling showed that SmGGPPS is a new GGPPS with a spatial structure similar to other plant GGPPSs. Phylogenetic tree analysis indicated that SmGGPPS belongs to the plant GGPPS super-family and has the closest relationship with GGPPS from Nicotiana attenuate. The functional identification in Escherichia coli showed that SmGGPPS could accelerate the biosynthesis of carotenoid, demonstrating that SmGGPPS encoded a functional protein. Expression pattern analysis implied that SmGGPPS expressed higher in leaves and roots, weaker in stems. The expression of SmGGPPS could be up-regulated by Salicylic acid (SA) in leaves and inhibited by methyl jasmonate (MeJA) in 3 tested tissues, suggesting that SmGGPPS was elicitor-responsive. This work will be helpful to understand more about the role of SmGGPPS involved in the tanshinones biosynthesis pathway and metabolic engineering to improve tanshiones production in S. miltiorrhiza.

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