Quantitative trait locus mapping of fruit aroma compounds in cucumber (Cucumber sativus L.) based on a recombinant inbred line population

Yinhui Sun , Xvzhen Li , Zhaoyang Ma , Shuxia Chen

Horticulture Research ›› 2022, Vol. 9 ›› Issue (1) : uhac151

PDF (1640KB)
Horticulture Research ›› 2022, Vol. 9 ›› Issue (1) :uhac151 DOI: 10.1093/hr/uhac151
Article
research-article
Quantitative trait locus mapping of fruit aroma compounds in cucumber (Cucumber sativus L.) based on a recombinant inbred line population
Author information +
History +
PDF (1640KB)

Abstract

The fresh and unique flavor of cucumber fruits, mainly composed of aldehydes and alcohols, is one of its most important fruit qualities. However, little is known about the genetic basis of aroma compounds in cucumber fruit and the related quantitative trait loci (QTLs). In this study, genomic screening of QTLs underlying aroma compounds was performed based on the genetic linkage map constructed using 1301 single-nucleotide polymorphism (SNP) markers from genotyping-by-sequencing of a recombinant inbred line (RIL) population developed from Q16 × Q24. Significant genetic variations of aroma compounds in the RIL population were observed, and a total of 28 QTLs were screened. A major QTL (qol8-2.1) related to (E, Z)-2,6-nonadien-1-ol was detected with a markedly high LOD score (10.97 in 2020 and 3.56 in 2019) between mk190 and mk204 on chromosome 2. Genome scans identified a cluster of nine lipoxygenase genes in this region. A significant positive correlation was detected between CsaV3_2G005360 (CsLOX08) and (E, Z)-2,6-nonadien-1-ol, and five amino acid variations were detected between the CsLOX08 protein sequences of the two parental lines. Based on the genome variation of CsLOX08, we developed an InDel marker. Genotyping of InDel markers was consistent with the content of (E, Z)-2,6-nonadien-1-ol in RILs, which were also verified in nine cucumber inbred lines. The results will give breeders guidance for obtaining better flavor in cucumber.

Cite this article

Download citation ▾
Yinhui Sun, Xvzhen Li, Zhaoyang Ma, Shuxia Chen. Quantitative trait locus mapping of fruit aroma compounds in cucumber (Cucumber sativus L.) based on a recombinant inbred line population. Horticulture Research, 2022, 9 (1) : uhac151 DOI:10.1093/hr/uhac151

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Dong S, Cao L, Zhang SP et al. Effect of grafting on fruit appearance quality and flavor substances in cucumber. China Vegetables. 2013; 22: 44-51.

[2]

Chen S, Chen Q, Wang C et al. Progress in research on the metabolic regulation and molecular mechanism of green leave volatiles (GLVs). Sci Agric Sin. 2012; 45: 1545-57.

[3]

Wei G, Tian P, Zhang F et al. Integrative analyses of nontargeted volatile profiling and transcriptome data provide molecular insight into VOC diversity in cucumber plants (Cucumis sativus) . Plant Physiol. 2016; 172: 603-18.

[4]

Schieberle P, Ofner S, Grosch W . Evaluation of potent odorants in cucumbers (Cucumis sativus) and muskmelons (Cucumis melo) by aroma extract dilution analysis . J Food Sci. 1990; 55: 193-5.

[5]

Li X, Sun Y, Wang X et al. Relationship between key environmental factors and profiling of volatile compounds during cucumber fruit development under protected cultivation. Food Chem. 2019; 290: 308-15.

[6]

Yan D, Yang Y, Wang C et al. Effects of epigallocatechin-3-gallate (EGCG) on skin greasiness and related gene expression in ‘Jonagold’ apple fruit during ambient storage. Postharvest Biol Technol. 2018; 143: 28-34.

[7]

Weichert H, Kolbe A, Kraus A et al. Metabolic profiling of oxylipins in germinating cucumber seedlings - lipoxygenase-dependent degradation of triacylglycerols and biosynthesis of volatile aldehydes. Planta. 2002; 215: 612-9.

[8]

Matsui K, Minami A, Hornung E et al. Biosynthesis of fatty acid derived aldehydes is induced upon mechanical wounding and its products show fungicidal activities in cucumber. Phytochemistry. 2006; 67: 649-57.

[9]

Wang Y, Wyllie SG, Leach DN . Chemical changes during the development and ripening of the fruit of Cucumis melo (cv. Makdimon) . J Agric Food Chem. 1996; 44: 210-6.

[10]

Wasternack C, Feussner I . The oxylipin pathways: biochemistry and function. Annu Rev Plant Biol. 2018; 69: 363-86.

[11]

Chen S, Zhang R, Hao L et al. Profiling of volatile compounds and associated gene expression and enzyme activity during fruit development in two cucumber cultivars. PLoS One. 2015; 10: e0119444.

[12]

Forss DA, Dunstone EA, Ramshaw EH et al. The flavor of cucumbers. J Food Sci. 1962; 27: 90-3.

[13]

Maarse H . Volatile Compounds in Foods and Beverages . New York: Routledge; 2017.

[14]

Deng J, Yu HJ, Li YY et al. Leaf volatile compounds and associated gene expression during short-term nitrogen deficient treatments in Cucumis seedlings. Int J Mol Sci. 2016; 17: 1713.

[15]

Xu Q, Geng Y, Qi X et al. Genetic analysis of the five major aromatic substances in cucumber (Cucumis sativus L.) . J Hortic Sci Biotechnol. 2012; 87: 113-6.

[16]

Calle A, Wünsch A . Multiple-population QTL mapping of maturity and fruit-quality traits reveals LG4 region as a breeding target in sweet cherry (Prunus avium L.) . Hortic Res. 2020; 7: 1-13.

[17]

Galpaz N, Gonda I, Shem-Tov D et al. Deciphering genetic factors that determine melon fruit-quality traits using RNA-Seq-based high-resolution QTL and eQTL mapping. Plant J. 2018; 94: 169-91.

[18]

Mayobre C, Pereira L, Eltahiri A et al. Genetic dissection of aroma biosynthesis in melon and its relationship with climacteric ripening. Food Chem. 2021; 353: 129484.

[19]

Rambla JL, Medina A, Fernández-del-Carmen A et al. Identification, introgression, and validation of fruit volatile QTLs from a red-fruited wild tomato species. J Exp Bot. 2017; 68: 429-42.

[20]

Tikunov YM, Roohanitaziani R, Meijer-Dekens F et al. The genetic and functional analysis of flavor in commercial tomato: the FLORAL4 gene underlies a QTL for FLORAL aroma volatiles in tomato fruit. Plant J. 2020; 103: 1189-204.

[21]

Yauk YK, Chagné D, Tomes S et al. The O-methyltransferase gene MdoOMT1 is required for biosynthesis of methylated phenylpropenes in ripe apple fruit. Plant J. 2015; 82: 937-50.

[22]

Souleyre EJ, Chagné D, Chen X et al. The AAT1 locus is critical for the biosynthesis of esters contributing to ‘ripe apple’ flavour in ‘Royal Gala’ and ‘Granny Smith’ apples. Plant J. 2014; 78: 903-15.

[23]

Zeng Y, Wang MY, Hunter DC et al. Sensory-directed genetic and biochemical characterization of volatile terpene production in kiwifruit. Plant Physiol. 2020; 183: 51-66.

[24]

Kemp TR, Knavel DE, Stoltz LP . Identification of some volatile compounds from cucumber. J Agric Food Chem. 1974; 22: 717-8.

[25]

Zhou A, McFeeters RF . Volatile compounds in cucumbers fermented in low-salt conditions. J Agric Food Chem. 1998; 46: 2117-22.

[26]

Kemp TR, Knavel DE, Stoltz LP . cis-6-Nonenal: a flavor component of muskmelon fruit . Phytochemistry. 1972; 11: 3321-2.

[27]

Forney CF, Kalt W, Jordan MA . The composition of strawberry aroma is influenced by cultivar, maturity, and storage. HortScience. 2000; 35: 1022-6.

[28]

Rowan DD, Hunt MB, Dimouro Á et al. Profiling fruit volatiles in the progeny of a ‘Royal Gala’ × ‘Granny Smith’ apple (Malus × domestica) cross. J Agric Food Chem. 2009; 57: 7953-61.

[29]

Akacha NB, Boubaker O, Gargouri M . Production of hexenol in a two-enzyme system: kinetic study and modelling. Biotechnol Lett. 2005; 27: 1875-8.

[30]

Lisec J, Meyer RC, Steinfath M et al. Identification of metabolic and biomass QTL in Arabidopsis thaliana in a parallel analysis of RIL and IL populations. Plant J. 2008; 53: 960-72.

[31]

Zorrilla-Fontanesi Y, Rambla JL, Cabeza A et al. Genetic analysis of strawberry fruit aroma and identification of O-methyltransferase FaOMT as the locus controlling natural variation in mesifurane content. Plant Physiol. 2012; 159: 851-70.

[32]

Eduardo I, Chietera G, Pirona R et al. Genetic dissection of aroma volatile compounds from the essential oil of peach fruit: QTL analysis and identification of candidate genes using dense SNP maps. Tree Genet Genomes. 2013; 9: 189-204.

[33]

Zanor MI, Rambla JL, Chaïb J et al. Metabolic characterization of loci affecting sensory attributes in tomato allows an assessment of the influence of the levels of primary metabolites and volatile organic contents. J Exp Bot. 2009; 60: 2139-54.

[34]

Babenko LM, Shcherbatiuk MM, Skaterna TD et al. Lipoxygenases and their metabolites in formation of plant stress tolerance. Ukr Biochem J. 2017; 89: 5-21.

[35]

Liu S, Liu X, Jiang L . Genome-wide identification, phylogeny and expression analysis of the lipoxygenase gene family in cucumber. Genet Mol Res. 2011; 10: 2613-36.

[36]

Yang X, Jiang W, Yu H . The expression profiling of the lipoxygenase (LOX) family genes during fruit development, abiotic stress and hormonal treatments in cucumber (Cucumis sativus L) . Int J Mol Sci. 2012; 13: 2481-500.

[37]

Zheng Y, Boeglin WE, Schneider C et al. A 49-kDa mini-lipoxygenase from Anabaena sp. PCC 7120 retains catalytically complete functionality. J Biol Chem. 2008; 283: 5138-47.

[38]

Banthiya S, Kalms J, Galemou Yoga E et al. Structural and functional basis of phospholipid oxygenase activity of bacterial lipoxygenase from Pseudomonas aeruginosa . Biochim Biophys Acta. 2016; 1861: 1681-92.

[39]

Zhang Z, Shi Y, Ma Y et al. The strawberry transcription factor FaRAV1 positively regulates anthocyanin accumulation by activation of FaMYB10 and anthocyanin pathway genes. Plant Biotechnol J. 2020; 18: 2267-79.

[40]

Jian W, Cao H, Yuan S et al. SlMYB75, an MYB-type transcription factor, promotes anthocyanin accumulation and enhances volatile aroma production in tomato fruits. Hortic Res. 2019; 6: 22.

[41]

Lu H, Luo Z, Wang L et al. FaMYB9 is involved in the regulation of C6 volatile biosynthesis in strawberry. Plant Sci. 2020; 293: 110422.

[42]

Qin G, Wang Y, Cao B et al. Unraveling the regulatory network of the MADS box transcription factor RIN in fruit ripening. Plant J. 2012; 70: 243-55.

[43]

Yin W, Hu Z, Hu J et al. Tomato (Solanum lycopersicum) MADS-box transcription factor SlMBP8 regulates drought, salt tolerance and stress-related genes . Plant Growth Regul. 2017; 83: 55-68.

[44]

Li Y, Yang L, Pathak M et al. Fine genetic mapping of cp: a recessive gene for compact (dwarf) plant architecture in cucumber, Cucumis sativus L. Theor Appl Genet. 2011; 123: 973-83.

[45]

Liu X, Guo L, You J et al. Progress of segregation distortion in genetic mapping of plants. Res J Agron. 2010; 4: 78-83.

[46]

Wan X, Chen S, Wang C et al. Isolation, expression, and characterization of a hydroperoxide lyase gene from cucumber. Int J Mol Sci. 2013; 14: 22082-2101.

[47]

Weng Y, Colle M, Wang Y et al. QTL mapping in multiple populations and development stages reveals dynamic quantitative trait loci for fruit size in cucumbers of different market classes. Theor Appl Genet. 2015; 128: 1747-63.

PDF (1640KB)

71

Accesses

0

Citation

Detail

Sections
Recommended

/