Most significant genome regions involved in the control of earliness traits in bread wheat, as revealed by QTL meta-analysis

被引:137
作者
Hanocq, E.
Laperche, A.
Jaminon, O.
Laine, A. -L.
Le Gouis, J.
机构
[1] INRA, UMR Stress Abiot & Differenciat Vegetaux Cult 128, USTL, F-80203 Peronne, France
[2] INRA, APBV, UMR 118, F-35653 Le Rheu, France
关键词
D O I
10.1007/s00122-006-0459-z
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Earliness is one of the most important adaptation traits in plant breeding. Our purpose was to identify the genome regions of bread wheat involved in the control of earliness and its three components: photoperiod sensitivity (PS), vernalization requirement (VR) and intrinsic earliness (IE). A QTL meta-analysis was carried out to examine the replicability of QTL across 13 independent studies and to propose meta-QTL (MQTL). Initial QTL were projected on a recent consensus map (2004). Quality criteria were proposed to assess the reliability of this projection. These criteria were based on the distances between markers in the QTL regions. Chromosomes of groups 2 and 5 had a greater incidence on earliness control as they carry the known, major genes Ppd and Vrn. Other chromosome regions played an intermediate role in earliness control: 4A [heading date (HD) Meta-QTL], 4B (HD MQTL), 2B (VR MQTL) and 5B (IE MQTL). Markers at this four MQTL should prove helpful in marker-assisted selection, to better control earliness.
引用
收藏
页码:569 / 584
页数:16
相关论文
共 43 条
[1]   BioMercator: integrating genetic maps and QTL towards discovery of candidate genes [J].
Arcade, A ;
Labourdette, A ;
Falque, M ;
Mangin, B ;
Chardon, F ;
Charcosset, A ;
Joets, J .
BIOINFORMATICS, 2004, 20 (14) :2324-2326
[2]   The replicability of QTLs for murine alcohol preference drinking behavior across eight independent studies [J].
Belknap, JK ;
Atkins, AL .
MAMMALIAN GENOME, 2001, 12 (12) :893-899
[3]   Mapping of quantitative trait loci determining agronomic important characters in hexaploid wheat (Triticum aestivum L.) [J].
Börner, A ;
Schumann, E ;
Fürste, A ;
Cöster, H ;
Leithold, B ;
Röder, MS ;
Weber, WE .
THEORETICAL AND APPLIED GENETICS, 2002, 105 (6-7) :921-936
[4]   Genetic architecture of flowering time in maize as inferred from quantitative trait loci meta-analysis and synteny conservation with the rice genome [J].
Chardon, F ;
Virlon, B ;
Moreau, L ;
Falque, M ;
Joets, J ;
Decousset, L ;
Murigneux, A ;
Charcosset, A .
GENETICS, 2004, 168 (04) :2169-2185
[5]   A simple method to calculate resolving power and confidence interval of QTL map location [J].
Darvasi, A ;
Soller, M .
BEHAVIOR GENETICS, 1997, 27 (02) :125-132
[6]   RFLP MAPPING OF THE VERNALIZATION (VRN1) AND FROST-RESISTANCE (FR1) GENES ON CHROMOSOME 5A OF WHEAT [J].
GALIBA, G ;
QUARRIE, SA ;
SUTKA, J ;
MORGOUNOV, A ;
SNAPE, JW .
THEORETICAL AND APPLIED GENETICS, 1995, 90 (7-8) :1174-1179
[7]   Mapping of quantitative trait loci for field resistance to Fusarium head blight in an European winter wheat [J].
Gervais, L ;
Dedryver, F ;
Morlais, JY ;
Bodusseau, V ;
Negre, S ;
Bilous, M ;
Groos, C ;
Trottet, M .
THEORETICAL AND APPLIED GENETICS, 2003, 106 (06) :961-970
[8]  
Glass G. V., 1976, Educational Researcher, V5, P3, DOI [DOI 10.3102/0013189X005010003, 10.2307/1174772ISSN0536-1036, 10.3102/0013189X005010003]
[9]  
Goffinet B, 2000, GENETICS, V155, P463
[10]   Detection and mapping of QTL for earliness components in a bread wheat recombinant inbred lines population [J].
Hanocq, E ;
Niarquin, M ;
Heumez, E ;
Rousset, M ;
Le Gouis, J .
THEORETICAL AND APPLIED GENETICS, 2004, 110 (01) :106-115