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Inheritance of muscat berry volatiles in grape interspecific cross population
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  • 作者:Cuixia Liu ; Peige Fan ; Mingxi He ; Haohao Zhang ; Xianju Liu ; Zhenrong Luo…
  • 关键词:Grape ; Inheritance ; The interspecific cross population ; Monoterpenes ; Muscat cultivars ; Volatiles
  • 刊名:Euphytica
  • 出版年:2016
  • 出版时间:March 2016
  • 年:2016
  • 卷:208
  • 期:1
  • 页码:73-89
  • 全文大小:947 KB
  • 参考文献:Battilana J, Costantini L, Emanuelli F, Sevini F, Segala C, Moser S, Velasco R, Versini G, Grando MS (2009) The 1-deoxy-d- xylulose 5-phosphate synthase gene co-localizes with a major QTL affecting monoterpene content in grapevine. Theor Appl Genet 118(4):653–669CrossRef PubMed
    Belancic A, Agosin E, Ibacache A, Bordeu E, Baumes R, Razungles A, Bayonove C (1997) Influence of sun exposure on the aromatic composition of Chilean muscat grape cultivars Moscatel de Alejandria and Moscatel rosada. Am J Enol Vitic 48(2):181–186
    Bordiga M, Rinaldi M, Locatelli M, Piana G, Travaglia F, Coisson JD, Arlorio M (2013) Characterization of muscat wines aroma evolution using comprehensive gas chromatography followed by a post-analytic approach to 2D contour plots comparison. Food Chem 140(1–2):57–67CrossRef PubMed
    Bueno JE, Peinado R, Moreno J, Medina M, Moyano L, Zea L (2003) Selection of volatile aroma compounds by statistical and enological criteria for analytical differentiation of musts and wines of two grape varieties. J Food Sci 68(1):158–163CrossRef
    Crespan M, Milani N (2001) The muscats: a molecular analysis of synonyms, homonyms and genetic relationships within a large family of grapevine cultivars. Vitis 40(1):23–30
    Dastager SG (2009) Aroma compounds. In: Nigam P, Pandey A (eds) Biotechnology for agro-industrial residues utilisation. Springer Science + Business Media B.V., New York, pp 105–127CrossRef
    Dirninger N, Duc D, Schneider C, Dumas V, Asselin C, Schaeffer A (1998) Wine quality and “terroirs”: influence of environmental characteristics on the gewurztraminer flavor profile. Sci Des Aliments 18(2):193–209
    Doligez A, Adam-Blondon AF, Cipriani G, Laucou V, Merdinoglu D, Meredith CP, Riaz S, Roux C, This P, Di Gaspero G (2006a) An integrated SSR map of grapevine based on five mapping populations. Theor Appl Genet 113(3):369–382CrossRef PubMed
    Doligez A, Audiot E, Baumes R, This P (2006b) QTLs for muscat flavor and monoterpenic odorant content in grapevine (Vitis vinifera L.). Mol Breed 18(2):109–125CrossRef
    Duchêne E, Butterlin G, Claudel P, Dumas V, Jaegli N, Merdinoglu D (2009) A grapevine (Vitis vinifera L.) deoxy-d- xylulose synthase gene colocates with a major quantitative trait loci for terpenol content. Theor Appl Genet 118(3):541–552CrossRef PubMed
    Eibach R, Hastrich H, Topfer R (2003) Inheritance of aroma compounds. In: Hajdu E, Borbas E (eds) Proceedings of the 8th international conference on grape genetics and breeding, vols 1 and 2. Acta Horticulturae, vol 603, pp 337–344
    Fanizza G, Corona MG, Resta P (2000) Analysis of genetic relationships among muscat grapevines in Apulia (South Italy) by RAPD markers. Vitis 39(4):159–161
    Fenoll J, Manso A, Hellin P, Ruiz L, Flores P (2009) Changes in the aromatic composition of the Vitis vinifera grape Muscat Hamburg during ripening. Food Chem 114(2):420–428CrossRef
    Fenoll J, Maria Martinez C, Hellin P, Flores P (2012) Changes of free and glycosidically bound monoterpenes and aromatic alcohols in moscatuel and ruby seedless table grapes during development. J Int Des Sci De La Vigne Et Du Vin 46(1):41–50
    Liu HF, Wu BH, Fan PG, Xu HY, Li SH (2007) Inheritance of sugars and acids in berries of grape (Vitis vinifera L.). Euphytica 153(1–2):99–107
    Martin DM, Aubourg S, Schouwey MB, Daviet L, Schalk M, Toub O, Lund ST, Bohlmann J (2010) 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 10:226PubMedCentral CrossRef PubMed
    Mateo JJ, Jimenez M (2000) Monoterpenes in grape juice and wines. J Chromatogr A 881(1–2):557–567CrossRef PubMed
    Perez AG, Rios JJ, Sanz C, Olias JM (1992) Aroma components and free amino-acids in strawberry variety chandler during ripening. J Agric Food Chem 40(11):2232–2235CrossRef
    Pichersky E, Gershenzon J (2002) The formation and function of plant volatiles: perfumes for pollinator attraction and defense. Curr Opin Plant Biol 5(3):237–243CrossRef PubMed
    Reynolds AG, Wardle DA (1997) Flavour development in the vineyard: impact of viticultural practices on grape monoterpenes and their relationship to wine sensory response. S Afr J Enol Vitic 18(1):3–18
    Reynolds AG, Wardle DA, Dever M (1993) Terpene response to pressing, harvest date, and skin contact in vitis-vinifera. HortScience 28(9):920–924
    Reynolds AG, Wardle DA, Hall JW, Dever M (1995) Fruit maturation of four Vitis vinifera cultivars in response to vineyard location and basal leaf removal. Am J Enol Vitic 46(4):542–558
    Reynolds AG, Wardle DA, Dever M (1996) Vine performance, fruit composition, and wine sensory attributes of Gewurztraminer in response to vineyard location and canopy manipulation. Am J Enol Vitic 47(1):77–92
    Ribereaugayon P, Boidron JN, Terrier A (1975) Aroma of muscat grape varieties. J Agric Food Chem 23(6):1042–1047CrossRef
    Selli S, Canbas A, Cabaroglu T, Erten H, Gunata Z (2006) Aroma components of cv. muscat of Bornova wines and influence of skin contact treatment. Food Chem 94(3):319–326CrossRef
    Strauss CR, Wilson B, Anderson R, Williams PJ (1987) Development of precursors of C13- norisoprenoid flavorants in riesling grapes. Am J Enol Vitic 38(1):23–27
    Watkins P, Wijesundera C (2006) Application of zNose (TM) for the analysis of selected grape aroma compounds. Talanta 70(3):595–601CrossRef PubMed
    Winterhalter P, Sefton MA, Williams PJ (1990) volatile C13-norisoprenoid compounds in riesling wine are generated from multiple precursors. Am J Enol Vitic 41(4):277–283
    Wu BH, Yang CX, Liang ZC, Liu W, Wang YJ, Liu CY, Li SH (2013) Inheritance of berry volatile compounds in two half-sib grape (Vitis vinifera) populations. Euphytica 189(3):351–364CrossRef
    Yang C, Wang Y, Liang Z, Fan P, Wu B, Yang L, Wang Y, Li S (2009) Volatiles of grape berries evaluated at the germplasm level by headspace-SPME with GC-MS. Food Chem 114(3):1106–1114CrossRef
    Zhang H, Fan P, Liu C, Wu B, Li S, Liang Z (2014) Sunlight exclusion from muscat grape alters volatile profiles during berry development. Food Chem 164:242–250CrossRef PubMed
  • 作者单位:Cuixia Liu (1) (2) (3)
    Peige Fan (2)
    Mingxi He (4)
    Haohao Zhang (2)
    Xianju Liu (2)
    Zhenrong Luo (4)
    Francis Kweya Ombwara (5)
    Zhenchang Liang (2)
    Shaohua Li (1) (2)

    1. Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan, 430074, China
    2. Beijing Key Laboratory of Grape Science and Enology and CAS Key Laboratory of Plant Resources, Institute of Botany, Chinese Academy of Sciences, Beijing, 100093, China
    3. University of Chinese Academy of Sciences, Beijing, 100049, China
    4. Key Laboratory of Horticultural Plant Biology, Huazhong Agricultural University, Wuhan, 430070, China
    5. Department of Horticulture, Jomo Kenyatta University of Agriculture and Technology, Nairobi, 00200, Kenya
  • 刊物类别:Biomedical and Life Sciences
  • 刊物主题:Life Sciences
    Plant Physiology
    Plant Sciences
    Ecology
  • 出版者:Springer Netherlands
  • ISSN:1573-5060
文摘
The interspecific cross is an important breeding method in grape breeding program. We analyzed the composition and content of volatiles arising from a cross between ‘Beifeng’ and ‘3-34’ grape varieties over 3 years. Samples comprised ripe berries harvested from parental plants and their offspring. Qualitative analysis of volatile compounds present was by use of a modified GC–MS method. Volatile compounds were identified by their mass spectra and quantified. Phenotypic ratios were derived for compounds segregating in the progeny. Frequency range, median and distribution densities in the sample were determined, and broad sense inheritability values were estimated. Twenty-eight volatile compounds were detected in the maternal ‘Beifeng’, while 36 compounds were detected in the paternal ‘3-34’. The C6 compounds were the dominant volatile compounds in ‘Beifeng’, while monoterpenes were predominant in ‘3-34’. Segregation of limetal, (Z)-rose oxide and nerol was consistent with Mendelian laws of inheritance, while the distribution of values of total monoterpenes content of the offspring was skewed towards the low content area. Positive correlations were observed between all of the monoterpenes. Evidence of transgressive inheritance was noted, indicated by the exceptionally high monoterpene contents observed amongst some of the progeny. Other volatile groups were distributed in the progeny in a normal, continuous manner despite a wide range of variation, indicating that their presence and concentration is a quantitative trait, controlled by polygenes. The results will be helpful for selection of good muscat cultivars in grape breeding in the future.

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