Genetic control of fruit vitamin C contents

被引:75
作者
Davey, Mark W. [1 ]
Kenis, Katrien [1 ]
Keulemans, Johan [1 ]
机构
[1] Catholic Univ Louvain, Lab Fruit Breeding & Biotechnol Dept, Dept Biosyst, Fac Appl Biosci & Bioengn, B-3001 Heverlee, Belgium
关键词
D O I
10.1104/pp.106.083279
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
An F-1 progeny derived from a cross between the apple (Malus x domestica) cultivars Telamon and Braeburn was used to identify quantitative trait loci (QTL) linked to the vitamin C (L-ascorbate [L-AA]) contents of fruit skin and flesh (cortex) tissues. We identified up to three highly significant QTLs for both the mean L-AA and the mean total L-AA contents of fruit flesh on both parental genetic linkage maps, confirming the quantitative nature of these traits. These QTLs account for up to a maximum of 60% of the total population variation observed in the progeny, and with a maximal individual contribution of 31% per QTL. QTLs common to both parents were identified on linkage groups (LGs) 6, 10, and 11 of the Malus reference map, while each parent also had additional unique QTLs on other LGs. Interestingly, one strong QTL on LG-17 of the Telamon linkage map colocalized with a highly significant QTL associated with flesh browning, and a minor QTL for dehydroascorbate content, supporting earlier work that links fruit L-AA contents with the susceptibility of hardfruit to postharvest browning. We also found significant minor QTLs for skin L-AA and total L-AA (L-AA 1 dehydroascorbate) contents in Telamon. Currently, little is known about the genetic determinants underlying tissue L-AA homeostasis, but the presence of major, highly significant QTL in both these apple genotypes under field conditions suggests the existence of common control mechanisms, allelic heterozygosity, and helps outline strategies and the potential for the molecular breeding of these traits.
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收藏
页码:343 / 351
页数:9
相关论文
共 69 条
[1]   Transcriptome and selected metabolite analyses reveal multiple points of ethylene control during tomato fruit development [J].
Alba, R ;
Payton, P ;
Fei, ZJ ;
McQuinn, R ;
Debbie, P ;
Martin, GB ;
Tanksley, SD ;
Giovannoni, JJ .
PLANT CELL, 2005, 17 (11) :2954-2965
[2]   Present and future of quantitative trait locus analysis in plant breeding [J].
Asíns, MJ .
PLANT BREEDING, 2002, 121 (04) :281-291
[3]   Cloning and linkage mapping of resistance gene homologues in apple [J].
Baldi, P ;
Patocchi, A ;
Zini, E ;
Toller, C ;
Velasco, R ;
Komjanc, M .
THEORETICAL AND APPLIED GENETICS, 2004, 109 (01) :231-239
[4]   ACCUMULATION OF ANTIOXIDANTS IN APPLE PEEL AS RELATED TO PREHARVEST FACTORS AND SUPERFICIAL SCALD SUSCEPTIBILITY OF THE FRUIT [J].
BARDEN, CL ;
BRAMLAGE, WJ .
JOURNAL OF THE AMERICAN SOCIETY FOR HORTICULTURAL SCIENCE, 1994, 119 (02) :264-269
[5]  
Carr AC, 1999, AM J CLIN NUTR, V69, P1086
[6]   A genetic map of candidate genes and QTLs involved in tomato fruit size and composition [J].
Causse, M ;
Duffe, P ;
Gomez, MC ;
Buret, M ;
Damidaux, R ;
Zamir, D ;
Gur, A ;
Chevalier, C ;
Lemaire-Chamley, M ;
Rothan, C .
JOURNAL OF EXPERIMENTAL BOTANY, 2004, 55 (403) :1671-1685
[7]   An introduction to markers, quantitative trait loci (QTL) mapping and marker-assisted selection for crop improvement: The basic concepts [J].
Collard, BCY ;
Jahufer, MZZ ;
Brouwer, JB ;
Pang, ECK .
EUPHYTICA, 2005, 142 (1-2) :169-196
[8]   Ascorbic acid, a familiar small molecule intertwined in the response of plants to ozone, pathogens, and the onset of senescence [J].
Conklin, PL ;
Barth, C .
PLANT CELL AND ENVIRONMENT, 2004, 27 (08) :959-970
[9]   Genetic evidence for the role of GDP-mannose in plant ascorbic acid (vitamin C) biosynthesis [J].
Conklin, PL ;
Norris, SR ;
Wheeler, GL ;
Williams, EH ;
Smirnoff, N ;
Last, RL .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (07) :4198-4203
[10]   Molecular-marker analysis of quantitative traits for growth and development in juvenile apple trees [J].
Conner, PJ ;
Brown, SK ;
Weeden, NF .
THEORETICAL AND APPLIED GENETICS, 1998, 96 (08) :1027-1035