Published September 30, 2014 | Version v1
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Expression of terpene synthase genes associated with the formation of volatiles in different organs of Vitis vinifera

  • 1. Department of Agriculture, Food and Environment, University of Pisa, Via del Borghetto 80, I-56124 Pisa, Italy

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Matarese, Fabiola, Cuzzola, Angela, Scalabrelli, Giancarlo, D'Onofrio, Claudio (2014): Expression of terpene synthase genes associated with the formation of volatiles in different organs of Vitis vinifera. Phytochemistry 105: 12-24, DOI: 10.1016/j.phytochem.2014.06.007, URL: http://dx.doi.org/10.1016/j.phytochem.2014.06.007

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urn:lsid:plazi.org:pub:FFF9FF9CF756044D2107FFC94544FFA4

References

  • Aharoni, A., Giri, A.P., Deuerlein, S., Griepink, F., de-Kogel, W.-J., Verstappen, F.W.A., Verhoeven, H.A., Jongsma, M.A., Schwab, W., Bouwmeester, H.J., 2003. Terpenoid metabolism in wild-type and transgenic Arabidopsis plants. Plant Cell 15, 2866-2884.
  • Bhalla, Y., Gupta, V.K., Jaitak, V., 2013. Anticancer activity of essential oils: a review. J. Sci. Food Agric. 93, 3643-3653.
  • Chen, F., Tholl, D., Bohlmann, J., Pichersky, E., 2011. The family of terpene synthases in plants: a mid size family of genes for specialized metabolism that is highly diversified throughout the kingdom. Plant J. 66, 212-229.
  • Coombe, B.G., 1995. Adoption of a system for identifying grapevine growth stages. Aust. J. Grape Wine Res. 1, 104-110.
  • Debboun, M., Frances, S.P., Strickman, D.A., 2006. Insect Repellents: Principles, Methods, and Uses. CRC Press.
  • Degenhardt, J., Gershenzon, J., 2000. Demonstration and characterization of (E)- nerolidol synthase from maize: a herbivore-inducible terpene synthase participating in (3E)-4,8-dimethyl-1,3,7-nonatriene biosynthesis. Planta 210, 815-822.
  • Degenhardt, J., Kollner, T.G., Gershenzon, J., 2009. Monoterpene and sesquiterpene synthases and the origin of terpene skeletal diversity in plants. Phytochemistry 70, 1621-1637.
  • D'Onofrio, C., Cox, A., Davies, C., Boss, P.K., 2009. Induction of secondary metabolism in grape cell cultures by jasmonates. Funct. Plant Biol. 36, 323-338.
  • Duchene, E., Legras, J.L., Karst, F., Merdinoglu, D., Claudel, P., Jaegli, N., Pelsy, F., 2009. Variation of linalool and geraniol content within two pairs of aromatic and non-aromatic grapevine clones. Aust. J. Grape Wine Res. 15, 120-130.
  • Dudareva, N., Pichersky, E., Gershenzon, J., 2004. Biochemistry of plant volatiles. Plant Physiol. 135, 1893-1902.
  • Dudareva, N., Klempien, A., Muhlemann, J.K., Kaplan, I., 2013. Biosynthesis, function and metabolic engineering of plant volatile organic compounds. New Phytol. 198, 16-32.
  • Falara, V., Akhtar, T.A., Nguyen, T.T.H., Spyropoulou, E.A., Bleeker, P.M., Schauvinhold, I., Matsuba, Y., Bovini, M.E., Schilmiller, A.L., Yuki, I., Last, R.L., Schuurink, R.C., Pichersky, E., 2011. The tomato terpene synthase gene family. Plant Physiol. 157, 770-789.
  • Fineschi, S., Loreto, F., 2012. Leaf volatile isoprenoids: an important defensive armament in forest tree species. iForest 5, 13-17.
  • Hatanaka, A., 1993. The biogeneration of green odour by green leaves. Phytochemistry 34, 1201-1218.
  • Horiuchiab, J.I., Muroiab, A., Takabayashibc, J., Nishiokaab, T., 2007. Exposing Arabidopsis seedlings to borneol and bornyl acetate affects root growth: Specificity due to the chemical and optical structures of the compounds. J. Plant Interact. 2, 101-104.
  • Kalua, C.M., Boss, P.K., 2009. Evolution of volatile compounds during the development of Cabernet Sauvignon grapes (Vitis vinifera L.). J. Agric. Food Chem. 57, 3818-3830.
  • Karapinar, M., Esen Aktug, ¸S., 1987. Inhibition of foodborne pathogens by thymol, eugenol, menthol and anethole. Int. J. Food Microbiol. 4, 161-166.
  • Kessler, A., Baldwin, I.T., 2001. Defensive function of herbivore-induced plant volatile emissions in nature. Science 291, 2141-2144.
  • Knudsen, J.T., Tollsten, L., Bergstrom, G., 1993. Floral scents - a checklist of volatile compounds isolated by head-space techniques. Phytochemistry 33, 253-280.
  • Lima, D.F., Brandao, M.S., Moura, J.B., Leitao, J.M.R.S., Carvalho, F.A.A., Miura, L.M.C.V., Leite, J.R.S.A., Sousa, D.P., Almeida, F.R.C., 2012. Antinociceptive activity of the monoterpene α- phellandrene in rodents: possible mechanisms of action. J. Pharm. Pharmacol. 64, 283-292.
  • Luan, F., Mosandl, A., Munch, A., Wust, M., 2005. Metabolism of geraniol in grape berry mesocarp of Vitis vinifera L. cv. Scheurebe: demonstration of stereoselective reduction, E/Z-isomerization, oxidation and glycosylation. Phytochemistry 66, 295-303.
  • Lucker, J., Bowen, P., Bohlmann, J., 2004. Vitis vinifera terpenoid cyclises: functional identification of two sesquiterpene synthase cDNAs encoding (+)-valencene synthase and (-)-germacrene D synthase and expression of mono- and sesquiterpene synthases in grapevine flowers and berries. Phytochemistry 65, 2649-2659.
  • Lund, S.T., Bohlmann, J., 2006. The molecular basis for wine grape quality a volatile subject. Science 311, 804-805.
  • Marais, J., 1983. Terpenes in the aroma of grapes and wines: a review. S. Afr. J. Enol. Vitic. 4, 49-58.
  • Martin, D.M., Bohlmann, J., 2004. Identification of Vitis vinifera (-)-α- terpineol synthase by in silico screening of full-length cDNA ESTs and functional characterization of recombinant terpene synthase. Phytochemistry 65, 1223- 1229.
  • Martin, D.M., Aubourg, S., Schouwey, M.B., Daviet, L., Schalk, M., Toub, O., Lund, S.T., Bohlmann, J., 2011. Functional annotation, genome organization and phylogeny of the grapevine (Vitis vinifera) terpene synthase gene family based on genome assembly, FLcDNA cloning, and enzyme assays. BMC Plant Biol. 10, 226-247.
  • Matarese, F., Scalabrelli, G., D'Onofrio, C., 2013. Analysis of the expression of terpene synthase genes in relation to aroma content in two aromatic Vitis vinifera varieties. Funct. Plant Biol. 40, 552-565.
  • Mateo, J.J., Gentilini, N., Huerta, T., Jimenez, M., Di Stefano, R., 1997. Fractionation of glycoside precursors of aroma in grapes and wine. J. Chromatogr. A 778, 219- 224.
  • Negre-Zakharov, F., Long, M.C., Dudareva, N., 2009. Floral Scents and Fruit Aromas Inspired by Nature. In: Osbourn, A.E., Lanzotti, V. (Eds.), Plant-derived Natural Products: Synthesis, Function, and Application. Springer, US, New York, pp. 405-431.
  • Pfaffl, M.W., 2001. A new mathematical model for relative quantification in real-time RT-PCR. Nucleic Acids Res. 29, 2002-2007.
  • Pierce Jr., H.D., Conn, J.E., Oehlschlager, A.C., Borden, J.H., 1987. Monoterpene metabolism in female mountain pine beetles, Dendroctonus ponderosae Hopkins, attacking ponderosa pine. J. Chem. Ecol. 13, 1455-1480.
  • Prema, B.R., Bhattacharyya, P.K., 1962. Microbiological transformation of terpenes II. Transformation of α- pinene. Appl. Environ. Microbiol. 10, 524-528.
  • Raguso, R.A., 2008. Wake up and smell the roses: the ecology and evolution of floral scent. Annu. Rev. Ecol. Evol. Syst. 39, 549-569.
  • Rasmann, S., Kollner, T.G., Degenhardt, J., Hiltpold, I., Toepfer, S., Kuhlmann, U., Gershenzon, J., Turlings, T.C.J., 2005. Recruitment of entomopathogenic nematodes by insect-damaged maize roots. Nature 434, 732-737.
  • Reid, K.E., Olsson, N., Schlosser, J., Peng, F., Lund, S.T., 2006. An optimized grapevine RNA isolation procedure and statistical determination of reference genes for real-time RT-PCR during berry development. BMC Plant Biol. 6, 27.
  • Reinhard, J., Srinivasan, M.V., Guez, D., Zhang, S.W., 2004. Floral scents induce recall of navigational and visual memories in honeybees. J. Exp. Biol. 207, 4371-4381.
  • Ribereau-Gayon, P., Glories, Y., Maujean, A., Dubourdieu, D., 1998. Traite d'oenologie. Chimie du vin. Stabilisation et traitements. Dunod, Paris.
  • Ruijter, J.M., Ramakers, C., Hoogaars, W.M.H., Karlen, Y., Bakker, O., van den Hoff, M.J.B., Moorman, A.F.M., 2009. Amplification efficiency, linking baseline and bias in the analysis of quantitative PCR data. Nucleic Acids Res. 37, e45.
  • Santos, M.R.V., Moreira, F.V., Fraga, B.P., de Souza, D.P., Bonjardim, L.R., Quintans- Junior, L.J., 2011. Cardiovascular effects of monoterpenes: a review. Rev. Bras. Farmacogn. 21, 764-771.
  • Seigler, D.S., 1995. Plant Secondary Metabolism. Kluwer Academic Publishers, Norwell, USA.
  • Shalit, M., Guterman, I., Volpin, H., Bar, E., Tamari, T., Menda, N., Adam, Z., Zamir, D., Vainstein, A., Weiss, D., Pichersky, E., Lewinsohn, E., 2003. Volatile ester formation in roses. Identification of an acetyl-coenzyme A: geraniol/citronellol acetyltransferase in developing rose petals. Plant Physiol. 131, 1868-1876.
  • Steeghs, M., Bais, H.P., de Gouw, J., Goldan, P., Kuster, W., Northway, M., Fall, R., Vivanco, J.M., 2004. Proton-transfer-reaction mass spectrometry (PTR-MS) as a new tool for real-time analysis of root-secreted volatile organic compounds (VOCs) in Arabidopsis thaliana. Plant Physiol. 135, 47-58.
  • Styger, G., Jacobson, D., Bauer, F.F., 2011. Identifying genes that impact on aroma profiles produced by Saccharomyces cerevisiae and the production of higher alcohols. Appl. Microbiol. Biotechnol. 91, 713-730.
  • Tholl, D., 2006. Terpene synthases and the regulation, diversity and biological roles of terpene metabolism. Curr. Opin. Plant Biol. 9, 297-304.
  • Unsicker, S.B., Kunert, G., Gershenzon, J., 2009. Protective perfumes: the role of vegetative volatiles in plant defense against herbivores. Curr. Opin. Plant Biol. 12, 479-485.
  • Vandesompele, J., De Preter, K., Pattyn, F., Poppe, B., Van Roy, N., De Paepe, A., Speleman, F., 2002. Accurate normalization of real-time quantitative RT-PCR data by geometric averaging of multiple internal control genes. Genome Biol. 3, 1-12.
  • Williams, P.J., Sefton, M.A., Francis, I.L., 1992. Glycosidic Precursors of Varietal Grape and Wine Flavour. In: Teranishi, R., Takeoka, G.R., Guntert, M. (Eds.), Flavor Precursors: Thermal and Enzymatic Conversions. ACS Publications, pp. 74-86.