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Cloning of artemisinin biosynthetic cDNAs and novel ESTs and quantification of low temperature-induced gene overexpression

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Abstract

To isolate and verify novel genes from qinghao (Artemisia annua) based on the development-specific and environment-induced transcriptomics, leaves have been harvested from the flowering A. annua plants and exposed to low temperature for isolation of total RNAs and cloning of full-length cDNAs and cDNA fragments, or expressed sequence tags (ESTs). After being sequenced and browsed for homology, these sequences have been submitted to GenBank. Among the accessed 75 sequences, 4 full-length cDNAs are highly homologous to the known A. annua genes, but 71 ESTs are absent in the sequence records of A. annua genes, in which 34 sequences are homologous to other plant genes, including 24 identified protein-coding sequences and 10 unidentified protein-coding sequences, while other 37 sequences are not present in the sequence records of any plant genes, representing the first cloned plant genes. In order to investigate the responsive patterns of A. annua genes to extreme environmental stresses, especially low temperature, the expression levels of 3 critical qinhaosu (artemisinin) biosynthetic genes, ADS, CYP71AV1 and CPR, have been measured in pre-and post-chilling A. annua seedlings cultured in vitro by semi-quantitative PCR (SQ-PCR). Consequently, ADS and CYP71AV1 genes are strongly induced by chilling, but CPR gene is not significantly affected by such treatment. Furthermore, induction of these genes by chilling can be potently suppressed by Ca2+ channel inhibitor LaCl3 or Ca2+ chelator EGTA, suggesting a putative involvement of Ca2+-CaM signal transduction pathway in chilling-induced overexpression of ADS and CYP71AV1 genes. The real-time fluorescent quantitative PCR (RFQ-PCR) assay of A. annua seedlings exposed to chilling has shown that the expression level of CaM gene is up-regulated for more than 2.5 folds, thereby confirming our above inference on the relevance of Ca2+-CaM-mediated signal transduction to chilling-induced gene overexpression. Finally, 7 newly isolated A. annua ESTs have been functionally annotated by RFQ-PCR, which indicates that the chilling stress-induced overexpression levels of D/LTSRP, UBE, AR/DAP and POD1 genes are augmented approximately for 8, 5, 2.3, and 1.5 folds, respectively, but those of CHI and RGP genes are not predominantly up-or down-regulated. The present study has preliminarily explored the chilling-induced overexpression patterns of 3 artemisinin biosynthetic genes and 7 novel A. annua ESTs at the transcriptional level, which should further facilitate our understanding of the intrinsic rule and mechanism underlying the coordinative regulation manner of artemisinin biosynthesis and accumulation, and yield substantial insight into improvement of A. annua by the metabolic engineering-guided breeding strategy.

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References

  1. The Arabidopsis Genome Initiative. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana. Nature, 2000, 408: 796–815

    Article  Google Scholar 

  2. International Rice Genome Sequencing Project. The map-based sequence of the rice genome. Nature, 2005, 436: 793–800

    Article  CAS  Google Scholar 

  3. Bertea C M, Voster A, Verstappen F W A, et al. Isoprenoid biosynthesis in Artemisia annua: Cloning and heterologous expression of a germacrene A synthase from a glandular trichome cDNA library. Arch Biochem Biophys, 2006, 448: 3–12

    Article  PubMed  CAS  Google Scholar 

  4. Covello P S, Teoh K H., Polichuk D R, et al. Functional genomics and the biosynthesis of artemisinin. Phytochemistry, 2007, 68: 1864–1871

    Article  PubMed  CAS  Google Scholar 

  5. Mercke P, Bengtsson M, Bouwmeester H J, et al. Molecular cloning, expression, and characterization of amorpha-4,11-diene synthase, a key enzyme of artemisinin biosynthesis in Artemisia annua L. Arch Biochem Biophys, 2000, 381: 173–180

    Article  PubMed  CAS  Google Scholar 

  6. Teoh K H, Polichuk D R, Reed D W, et al. Artemisia annua L. (Asteraceae) trichome-specific cDNAs reveal CYP71AV1, a cytochrome P450 with a key role in the biosynthesis of the antimalarial sesquiterpene lactone artemisinin. FEBS Lett, 2006, 580: 1411–1416

    Article  PubMed  CAS  Google Scholar 

  7. Ro D K, Paradise E M, Ouellet M, et al. Production of the antimalarial drug precursor artemisinic acid in engineered yeast. Nature, 2006, 440: 940–943

    Article  PubMed  CAS  Google Scholar 

  8. Lommen W J, Schenk E, Bouwmeester H J, et al. Trichome dynamics and artemisinin accumulation during development and senescence of Artemisia annua leaves. Planta Med, 2005, 72: 336–345

    Article  CAS  Google Scholar 

  9. Sy L K, Brown G D. The mechanism of the spontaneous autooxidation of dihydroartemisinic acid. Tetrahedron, 2002, 58: 879–908

    Google Scholar 

  10. Brown G D, Sy L K. In vitro transformations of dihydroartemisinic acid in Artemisia annua plants. Tetrahedron, 2004, 60: 1139–1159

    Article  CAS  Google Scholar 

  11. Liu S Q, Tian N, Li J, et al. Advances in studies on combinatorial biosynthesis of artemisinin. Chin Trad Herb Drug, 2007, 38: 1425–1431

    CAS  Google Scholar 

  12. Wang Y, Xia Z Q, Zhou F Y, et al. Studies on biosynthesis of artemisinin (III): The key intermediate-artemisinic acid in biosynthesis of artemisinin and arteannuin B. Acta Chim Sin, 1988, 46: 1152–1153

    CAS  Google Scholar 

  13. Wang Y, Xia Z Q, Zhou F Y, et al. Studies on biosynthesis of artemisinin (IV): Biosynthesis of artemisinin and arteannuin B by cell free extract of Artemisia annua L. Chin J Chem, 1993, 11: 452–463

    Google Scholar 

  14. Sangwan R S, Agarwal K, Kuthra R, et al. Biotransformation of artemisinic acid into arteannuin B and artemisinin in Artemisia annua L. Phytochemistry, 1993, 34: 1301–1302

    Article  CAS  Google Scholar 

  15. Nair M S R, Basile D V. Bioconversion of arteannuin B to artemisinin. J Nat Prod, 1993, 56: 1559–1566

    Article  PubMed  CAS  Google Scholar 

  16. Bharel S, Gulati A, Abdin M Z, et al. Enzymatic synthesis of artemisinin from natural and synthetic precursors. J Nat Prod, 1998, 61: 633–636

    Article  PubMed  CAS  Google Scholar 

  17. Abdin M Z, Israr M, Srivastava P S, et al. In vitro production of artemisinin: A novel antimalarial compound from Artemisia annua L. J Med Arom Plant Sci, 2000, 22: 378–384

    Google Scholar 

  18. Dhingra V, Rajoli C, Narasu M L. Partial purification of proteins involved in the bioconversion of arteannuin B to artemisinin. Bioresour Technol, 2000, 73: 279–282

    Article  CAS  Google Scholar 

  19. Dhingra V, Rajoli C, Narasu M L. Purification and characterization of enzyme involved in the bioconversion of arteannuin B to artemisinin. Biochem Biophys Res Commun, 2001, 281: 558–561

    Article  PubMed  CAS  Google Scholar 

  20. Wallaart T E, Pras N, Beekman A C, et al. Seasonal variation of artemisinin and its biosynthetic precursors in plants of Artemisia annua of different geographical origin: Proof for the existence of chemotypes. Planta Med, 2000, 66: 57–62

    Article  PubMed  CAS  Google Scholar 

  21. Wallaart T E, van Uden W, Lubbeerink H G M, et al. Isolation and identification of dihydro-artemisinic acid from Artemisia annua and its role in the biosynthesis of artemisinin. J Nat Prod 1999, 62:430–433

    Article  PubMed  CAS  Google Scholar 

  22. Wallaart T E, Pras N, Quax W J. Isolation and identification of dihydroartemisinic acid hydroperoxide from Artemisia annua: a novel biosynthetic precursor of artemisinin. J Nat Prod 1999, 62: 1161–1162

    Google Scholar 

  23. Irfan Q M, Israr M, Abdin M Z, et al. Response of Artemisia annua L. to lead and salt-induced oxidative stress. Environ Exp Bot, 2005, 53: 185–193

    Article  CAS  Google Scholar 

  24. Xiong L M, Schumaker K S, Zhu J K. Cell signaling during cold, drought, and salt stress. Plant Cell, 2002, S165–S183

  25. Wallaart T E, Bouwmeester H J, Hille J, et al. Amorpha-4, 11-diene synthase: Cloning and functional expression of a key enzyme in the biosynthetic pathway of the novel antimalarial drug artemisinin. Planta, 2001, 212: 460–465

    Article  PubMed  CAS  Google Scholar 

  26. Lin S Z, Zhang Z Y, Lin Y Z, et al. The role of calcium and calmodulin in freezing-induced freezing resistance of Populus tomentosa cuttings. Chin J Plant Physiol Mol Biol, 2004, 30: 59–68

    CAS  Google Scholar 

  27. Livak K J, Schmittgen T D. Analysis of relative gene expression data using real-time quantitative PCR and the 2 −ΔΔCt method. Methods, 2001, 25: 402–408

    Article  PubMed  CAS  Google Scholar 

  28. Yan X, Wang J Y, Wu X M, et al. Detection of hNTKL2BP1 gene expression in primary HCC by using RFQ-PCR. J Fudan Univ (Nat Sci), 2007, 46: 411–416

    CAS  Google Scholar 

  29. Matsushita Y, Kang W K, Charlwood B V, et al. Cloning and analysis of a cDNA encoding farnesyl diphosphate synthase from Artemisia annua. Gene, 1996, 172: 207–209

    Article  PubMed  CAS  Google Scholar 

  30. Weathers P J, Elkholy S, Wobbe K K. Artemisinin: The biosynthetic pathway and its regulation in Artemisia annua, a terpenoid-rich species. In Vitro Cell Dev Biol—Plant, 2006, 42: 309–317

    Article  CAS  Google Scholar 

  31. Souret F F, Kim Y, Wyslouzil B E, et al. Scale-up of Artemisia annua L. hairy root culture produces complex patterns of terpenoid gene expression. Biotechnol Bioeng, 2003, 83: 653–667

    Article  PubMed  CAS  Google Scholar 

  32. Wang H, Ge L, Ye H C, et al. Studies on the effects of fpf1 gene on Artemisia annua flowering time and on the linkage between flowering and artemisinin biosynthesis. Planta Med, 2004, 70: 347–352

    Article  PubMed  CAS  Google Scholar 

  33. Wang H, Liu Y, Chong K, et al. Earlier flowering induced by overexpression of CO gene does not accompany increase of artemisinin biosynthesis in Artemisia annua. Plant Biol (Stuttg), 2007, 9: 442–446

    Article  CAS  Google Scholar 

  34. Zhang Y S, Ye H C, Liu B Y, et al. Exogenous GA3 and flowering induce the conversion of artemisinic acid to artemisinin in Artemisia annua plants. Russ J Plant Physiol, 2005, 52: 58–62

    Article  CAS  Google Scholar 

  35. Geng S, Ma M, Ye H C, et al. Effects of ipt gene expression on the physiological and chemical characteristics of Artemisia annua L. Plant Sci, 2001, 160: 691–698

    Article  CAS  Google Scholar 

  36. Weathers P J, Bunk G, McCoy M C. The effect of phytohormones on growth and artemisinin production in Artemisia annua hairy roots. In Vitro Cell Dev Biol Plant, 2005, 41: 47–53

    Article  CAS  Google Scholar 

  37. Minorsky P V. A heuristic hypothesis of chilling in plants: a role for calcium as primary physiological transducer of injury. Plant Cell Environ, 1985, 8: 75–94

    Article  CAS  Google Scholar 

  38. Monroy A F, Sarhan F, Dhindsa R S. Freezing-induced changes in freezing tolerance, protein phosphorylation and gene expression: Evidence for a role of calcium. Plant Physiol, 1993, 102: 1227–1234

    Article  PubMed  CAS  Google Scholar 

  39. Monroy A F, Dhindsa R S. Low temperature signal transduction: Induction of cold acclimation-specific genes of alfalfa by calcium at 25°C. Plant Cell, 1995, 7: 321–331

    Article  PubMed  CAS  Google Scholar 

  40. Price A, Taylor A, Ripley S J. Oxidative signals in tobacco increase cytosolic calcium. Plant Cell, 1994, 6: 65–67

    Article  Google Scholar 

  41. Knight H, Trewavas A J, Knight M R. Freezing-calcium signaling in Arabidopsis involves two cellular pools and a change in calcium signature after acclimation. Plant Cell, 1996, 8: 489–503

    Article  PubMed  CAS  Google Scholar 

  42. Lopes Cardoso M I, Meijer A H, Rueb S, et al. A promoter region that controls basal and elicitor-inducible expression levels of the NADPH: Cytochrome P-450 reductase gene (Cpr) from Catharanthus roseus binds nuclear factor GT-1. Mol Gen Genet, 1997, 256: 674–681

    CAS  Google Scholar 

  43. Viswanathan C, Zhu J K. Molecular genetic analysis of cold-regulated gene transcription. Philos Trans R Soc Lond B Biol Sci, 2002, 357: 877–886

    Article  PubMed  CAS  Google Scholar 

  44. Kim H J, Kim Y K, Park J Y, et al. Light signalling mediated by phytochrome plays an important role in cold-induced gene expression through the C-repeat/dehydration responsive element (C/DRE) in Arabidopsis thaliana. Plant J, 2002, 29: 693–704

    Article  PubMed  CAS  Google Scholar 

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Correspondence to Zeng QingPing.

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Supported by the National Natural Science Foundation of China (Grant Nos. 30672614 and 30271591)

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Zeng, Q., Zhao, C., Yin, L. et al. Cloning of artemisinin biosynthetic cDNAs and novel ESTs and quantification of low temperature-induced gene overexpression. Sci. China Ser. C-Life Sci. 51, 232–244 (2008). https://doi.org/10.1007/s11427-008-0032-x

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  • DOI: https://doi.org/10.1007/s11427-008-0032-x

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