Genetic architecture of flowering time in maize as inferred from quantitative trait loci meta-analysis and synteny conservation with the rice genome

被引:311
作者
Chardon, F [1 ]
Virlon, B
Moreau, L
Falque, M
Joets, J
Decousset, L
Murigneux, A
Charcosset, A
机构
[1] CNRS, INRA, INA PG, UPS,Stn Genet Vegetale, F-91190 Gif Sur Yvette, France
[2] Biogemma, F-63170 Clermont Ferrand, France
关键词
D O I
10.1534/genetics.104.032375
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Genetic architecture of flowering time in maize was addressed by synthesizing a total of 313 quantitative trait loci (QTL) available for this trait. These were analyzed first with an overview Statistic that highlighted regions of key importance and then with a meta-analysis method that yielded a synthetic genetic model with 62 consensus QTL. Six of these displayed a major effect. Meta-analysis led in this case to a twofold increase in die precision in QTL position estimation, Mien compared to the most precise initial QTL position within the corresponding region. The 62 consensus QTL were compared first to the positions of the few flowering-time candidate genes that have been mapped in maize. We then projected rice candidate genes onto the maize genome using a synteny conservation approach based on comparative mapping between the maize genetic map and japonica rice physical map. This yielded 19 associations between maize QTL and genes involved in flowering time in rice and in Arabidopsis. Results suggest that the combination of meta-analysis within a species of interest and synteny-based projections front a related model plant can be an efficient strategy for identifying new candidate genes for trait variation.
引用
收藏
页码:2169 / 2185
页数:17
相关论文
共 79 条
[31]  
Goffinet B, 2000, GENETICS, V155, P463
[32]   Comparison of QTLs mapped in RILs and their test-cross progenies of tropical maize for insect resistance and agronomic traits [J].
Groh, S ;
Khairallah, MM ;
González-de-León, D ;
Willcox, M ;
Jiang, C ;
Hoisington, DA ;
Melchinger, AE .
PLANT BREEDING, 1998, 117 (03) :193-202
[33]   Adaptation of photoperiodic control pathways produces short-day flowering in rice [J].
Hayama, R ;
Yokoi, S ;
Tamaki, S ;
Yano, M ;
Shimamoto, K .
NATURE, 2003, 422 (6933) :719-722
[34]  
IRISH EE, 1991, DEVELOPMENT, V112, P891
[35]   Phytochromes confer the photoperiodic control of flowering in rice (a short-day plant) [J].
Izawa, T ;
Oikawa, T ;
Tokutomi, S ;
Okuno, K ;
Shimamoto, K .
PLANT JOURNAL, 2000, 22 (05) :391-399
[36]   Comparative biology comes into bloom:: genomic and genetic comparison of flowering pathways in rice and Arabidopsis [J].
Izawa, T ;
Takahashi, Y ;
Yano, M .
CURRENT OPINION IN PLANT BIOLOGY, 2003, 6 (02) :113-120
[37]   QTL analysis in plants; where are we now? [J].
Kearsey, MJ ;
Farquhar, AGL .
HEREDITY, 1998, 80 (2) :137-142
[38]   IDENTIFICATION OF QUANTITATIVE TRAIT LOCI CONTROLLING DAYS TO FLOWERING AND PLANT HEIGHT IN 2 NEAR-ISOGENIC LINES OF MAIZE [J].
KOESTER, RP ;
SISCO, PH ;
STUBER, CW .
CROP SCIENCE, 1993, 33 (06) :1209-1216
[39]   Hd3a, a rice ortholog of the Arabidopsis FT gene, promotes transition to flowering downstream of Hd1 under short-day conditions [J].
Kojima, S ;
Takahashi, Y ;
Kobayashi, Y ;
Monna, L ;
Sasaki, T ;
Araki, T ;
Yano, M .
PLANT AND CELL PHYSIOLOGY, 2002, 43 (10) :1096-1105
[40]   Genetic control of flowering time in arabidopsis [J].
Koornneef, M ;
Alonso-Blanco, C ;
Peeters, AJM ;
Soppe, W .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1998, 49 :345-370