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CYP72A67 Catalyzes a Key Oxidative Step in Medicago truncatula Hemolytic Saponin Biosynthesis 被引量:12

CYP72A67 Catalyzes a Key Oxidative Step in Medicago truncatula Hemolytic Saponin Biosynthesis
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摘要 In the Medicago genus, triterpenic saponins are bioactive secondary metabolites constitutively synthesized in the aerial and subterranean parts of plants via the isoprenoid pathway. Exploitation of saponins as pharmaceutics, agrochemicals and in the food and cosmetic industries has raised interest in identifying the enzymes involved in their synthesis. We have identified a cytochrome P450 (CYP72A67) involved in hemolytic sapogenin biosynthesis by a reverse genetic TILLING approach in a Medicago truncatula ethyl- methanesulfonate (EMS) mutagenized collection. Genetic and biochemical analyses, mutant complementation, and expression of the gene in a microsome yeast system showed that CYP72A67 is responsible for hydroxylation at the C-2 position downstream of oleanolic acid synthesis. The affinity of CYP72A67 for substrates with different substitutions at multiple carbon positions was investigated in the same in vitro yeast system, and in relation to two other CYP450s (CYP72A68) responsible for the production of medicagenic acid, the main sapogenin in M. truncatula leaves and roots. Full sib mutant and wild-type plants were compared for their sapogenin profile, expression patterns of the genes involved in sapogenin synthesis, and response to inoculation with Sinorhizobium meliloti. The results obtained allowed us to revise the hemolytic sapogenin pathway in M. truncatula and contribute to highlighting the tissue specificities (leaves/roots) of sapogenin synthesis. In the Medicago genus, triterpenic saponins are bioactive secondary metabolites constitutively synthesized in the aerial and subterranean parts of plants via the isoprenoid pathway. Exploitation of saponins as pharmaceutics, agrochemicals and in the food and cosmetic industries has raised interest in identifying the enzymes involved in their synthesis. We have identified a cytochrome P450 (CYP72A67) involved in hemolytic sapogenin biosynthesis by a reverse genetic TILLING approach in a Medicago truncatula ethyl- methanesulfonate (EMS) mutagenized collection. Genetic and biochemical analyses, mutant complementation, and expression of the gene in a microsome yeast system showed that CYP72A67 is responsible for hydroxylation at the C-2 position downstream of oleanolic acid synthesis. The affinity of CYP72A67 for substrates with different substitutions at multiple carbon positions was investigated in the same in vitro yeast system, and in relation to two other CYP450s (CYP72A68) responsible for the production of medicagenic acid, the main sapogenin in M. truncatula leaves and roots. Full sib mutant and wild-type plants were compared for their sapogenin profile, expression patterns of the genes involved in sapogenin synthesis, and response to inoculation with Sinorhizobium meliloti. The results obtained allowed us to revise the hemolytic sapogenin pathway in M. truncatula and contribute to highlighting the tissue specificities (leaves/roots) of sapogenin synthesis.
出处 《Molecular Plant》 SCIE CAS CSCD 2015年第10期1493-1506,共14页 分子植物(英文版)
关键词 Medicago truncatula saponin pathway cytochrome P450 CYP72A67 CYP72A68 TILLING analysis Medicago truncatula, saponin pathway, cytochrome P450, CYP72A67, CYP72A68, TILLING analysis
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  • 1Achnine, L., Huhman, D.V., Farag, M.A., Sumner, L.W., Blount, J.W., and Dixon, R.A. (2005). Genomics-based selection and functional characterization of triterpene glycosyltransferases from the model legume Medicago truncatula. Plant J. 41:875-887.
  • 2Agrell, J., Anderson, P., Oleszek, W., Stochmal, A., and Agrell, C. (2004). Combined effects of elevated C02 and herbivore damage on alfalfa and cotton. J. Chem. Ecol. 30:2309-2324.
  • 3Ahmed, V.U., Ahmed, W., and Usmanghanik, K. (1992). Triterpenoid saponins from leaves of Castanospermum australe. Phytochemistry 31:2805-2807.
  • 4Bialy, Z., Jurzysta, M., Oleszek, W., Piacente, S., and Pizza, C. (1999). Saponins in alfalfa (Medicago sativa L) root and their structural elucidation. J. Agric. Food Chem. 47:3185-3192.
  • 5Bialy, Z., Jurzysta, M., Mella, M., and Tava, A. (2006). Triterpene saponins from the roots of Medicago hybrida. J. Agric. Food Chem. 54:2520-2526.
  • 6Boisson-Dernier, A., Chabaud, M., Garcia, F., Bcard, G., Rosenberg, C,, and Barker, D.G. (2001). Hairy roots of Medicago truncatula as tools for studying nitrogen-fixing and endomycorrhizal symbioses, Mol. Plant Microbe Interact. 14:693-700.
  • 7Borel, C., Gupta, M.P., and Hostettman, K. (1987). Molluscicidal saponins from Swartzia simplex. Phytochemistry 26:2685-2689.
  • 8Carelli, M., Biazzi, E., Panara, F., Tava, A., Scaramelli, L., Porceddu, A., Graham, N., Odoardi, M., Piano, E., Arcioni, S., et al. (2011). Medicago truncatula CYP716A12 is a multifunctional oxidase involved in the biosynthesis of hemolytic saponins. Plant Cell 23:3070-3081.
  • 9Carelli, M., Calderini, O., Panara, F., Porceddu, A., Losini, I., Piffanelli, P., Arcioni, S., and Scotti, C. (2013). Reverse genetics in Medicago truncatula using a Tilling mutant collection. Methods Mol. Biol. 1069:101-118.
  • 10Carelli, M., Biazzi, E., Tava, A., Losini, I., Abbruscato, P., Depedro, C., and Scotti, C. (2015). Sapogenin content variation in Medlcago inter- specific hybrid derivatives highlights some aspects of saponin synthesis and control. New Phytol. 206:303-314.

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