Inheritance of reproductive phenology traits and related QTL identification in apricot

被引:0
作者
Juan Alfonso Salazar
David Ruiz
José Antonio Campoy
Stefano Tartarini
Luca Dondini
Pedro Martínez-Gómez
机构
[1] CEBAS-CSIC,Departamento de Mejora Vegetal
[2] University of Bordeaux,Dipartimento di Scienze Agrarie
[3] Università degli Studi di Bologna,undefined
来源
Tree Genetics & Genomes | 2016年 / 12卷
关键词
Breeding phenology; Flowering; Ripening; Breeding; Molecular markers; SNPlex; SSR;
D O I
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中图分类号
学科分类号
摘要
Reproductive phenological traits of great agronomical interest in apricot species, including flowering date, ripening date and fruit development period, were studied during 3 years in two F1 progenies derived from the crosses ‘Bergeron’ × ‘Currot’ (B × C) and ‘Goldrich’ × ‘Currot’ (G × C). Results showed great variability and segregation in each population, confirming the polygenic nature and quantitative inheritance of all the studied traits. Genetic linkage maps were constructed combining SSR and SNP markers, using 87 markers in the ‘B × C’ population and 89 markers in ‘G × C’. The genetic linkage maps in both progenies show the eight linkage groups (LGs) of apricot, covering a distance of 394.9 cM in ‘Bergeron’ and of 414.3 cM in ‘Currot’. The ‘Goldrich’ and ‘Currot’ maps were of 353.5 and 422.3 cM, respectively. The average distance obtained between markers was thus 7.59 cM in ‘Bergeron’ and 7.53 cM in ‘Currot’, whereas the ‘Goldrich’ and ‘Currot’ averages were 5.6 and 7.5 cM, respectively. According to the polygenic nature of the studied phenology traits, QTLs linked to flowering date, ripening date and the fruit development period were identified during the 3 years of the study in all LGs except for LG 8. Among the QTLs identified, major QTLs for flowering and ripening date and the fruit development period were identified in LG 4, especially important in the ‘G × C’ population.
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[1]  
Alburquerque N(2008)Chilling and heat requirements of sweet cherry cultivars and the relationship between altitude and the probability of satisfying the chill requirements Environ Exp Bot 64 162-170
[2]  
García-Montiel F(1993)Bloom delay in deciduous fruits Hortic Rev 15 97-144
[3]  
Carrillo A(1999)Cold and heat requirements of the apricot ( J Hortic Sci Biotechnol 74 757-761
[4]  
Burgos L(2012) L.) tree BMC Genet 13 203-99
[5]  
Anderson JL(1998)Development of a dense SNP-based linkage map of an apple rootstock progeny using the Euphytica 102 93-S166
[6]  
Seeley SD(2008) Infinium whole genome genotyping array Clim Chang 87 S153-568
[7]  
Andrés MV(2010)Analysis of apricot germplasm from the European ecogeographical group BMC Genet 11 218-372
[8]  
Durán JM(2010)Accumulated winter chill is decreasing in the fruit growing regions of California Plant Mol Biol Report 28 560-410
[9]  
Antanaviciute L(2011)A comparison of SNPs and microsatellites as linkage mapping markers: lessons from the zebra finch ( Sci Hortic 130 357-55
[10]  
Fernández-Fernández F(2011)) Plant Mol Biol Report 29 404-796