Integrating sorghum whole genome sequence information with a compendium of sorghum QTL studies reveals uneven distribution of QTL and of gene-rich regions with significant implications for crop improvement

被引:105
作者
Mace, E. S. [1 ]
Jordan, D. R. [1 ]
机构
[1] Dept Employment Econ Dev & Innovat, Hermitage Res Stn, Warwick, Qld 4370, Australia
关键词
QUANTITATIVE TRAIT LOCI; BICOLOR L. MOENCH; FLOWERING DROUGHT TOLERANCE; AFFECTING PLANT HEIGHT; SUGAR-RELATED TRAITS; GRAIN-SORGHUM; STAY-GREEN; DISEASE RESISTANCE; MOLECULAR ANALYSIS; IDENTIFICATION;
D O I
10.1007/s00122-011-1575-y
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
A comprehensive analysis was conducted using 48 sorghum QTL studies published from 1995 to 2010 to make information from historical sorghum QTL experiments available in a form that could be more readily used by sorghum researchers and plant breeders. In total, 771 QTL relating to 161 unique traits from 44 studies were projected onto a sorghum consensus map. Confidence intervals (CI) of QTL were estimated so that valid comparisons could be made between studies. The method accounted for the number of lines used and the phenotypic variation explained by individual QTL from each study. In addition, estimated centimorgan (cM) locations were calculated for the predicted sorghum gene models identified in Phytozome (JGI GeneModels SBI v1.4) and compared with QTL distribution genome-wide, both on genetic linkage (cM) and physical (base-pair/bp) map scales. QTL and genes were distributed unevenly across the genome. Heterochromatic enrichment for QTL was observed, with approximately 22% of QTL either entirely or partially located in the heterochromatic regions. Heterochromatic gene enrichment was also observed based on their predicted cM locations on the sorghum consensus map, due to suppressed recombination in heterochromatic regions, in contrast to the euchromatic gene enrichment observed on the physical, sequence-based map. The finding of high gene density in recombination-poor regions, coupled with the association with increased QTL density, has implications for the development of more efficient breeding systems in sorghum to better exploit heterosis. The projected QTL information described, combined with the physical locations of sorghum sequence-based markers and predicted gene models, provides sorghum researchers with a useful resource for more detailed analysis of traits and development of efficient marker-assisted breeding strategies.
引用
收藏
页码:169 / 191
页数:23
相关论文
共 92 条
[1]   Genetic mapping of QTLs associated with greenbug resistance and tolerance in Sorghum bicolor [J].
Agrama, HA ;
Widle, GE ;
Reese, JC ;
Campbell, LR ;
Tuinstra, MR .
THEORETICAL AND APPLIED GENETICS, 2002, 104 (08) :1373-1378
[2]   The organization and rate of evolution of wheat genomes are correlated with recombination rates along chromosome arms. [J].
Akhunov, ED ;
Goodyear, AW ;
Geng, S ;
Qi, LL ;
Echalier, B ;
Gill, BS ;
Miftahudin ;
Gustafson, JP ;
Lazo, G ;
Chao, SM ;
Anderson, OD ;
Linkiewicz, AM ;
Dubcovsky, J ;
La Rota, M ;
Sorrells, ME ;
Zhang, DS ;
Nguyen, HT ;
Kalavacharla, V ;
Hossain, K ;
Kianian, SF ;
Peng, JH ;
Lapitan, NLV ;
Gonzalez-Hernandeiz, JL ;
Anderson, JA ;
Choi, DW ;
Close, TJ ;
Dilbirligi, M ;
Gill, KS ;
Walker-Simmons, MK ;
Steber, C ;
McGuire, PE ;
Qualset, CO ;
Dvorak, J .
GENOME RESEARCH, 2003, 13 (05) :753-763
[3]  
[Anonymous], 1910, Science, V32, P627
[4]   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
[5]  
Beavis W.D., 1994, Proceedings of the Forty-Ninth Annual Corn Sorghum Industry Research Conference, P250
[6]   Inheritance of inflorescence architecture in sorghum [J].
Brown, P. J. ;
Klein, P. E. ;
Bortiri, E. ;
Acharya, C. B. ;
Rooney, W. L. ;
Kresovich, S. .
THEORETICAL AND APPLIED GENETICS, 2006, 113 (05) :931-942
[7]   Efficient mapping of plant height quantitative trait loci in a sorghum association population with introgressed dwarfing genes [J].
Brown, Patrick J. ;
Rooney, William L. ;
Franks, Cleve ;
Kresovich, Stephen .
GENETICS, 2008, 180 (01) :629-637
[8]  
CASADY A. J., 1965, CROP SCI, V5, P385, DOI 10.2135/cropsci1965.0011183X000500050002x
[9]   RFLP mapping of QTLs for photoperiod response in tropical sorghum [J].
Chantereau, J ;
Trouche, G ;
Rami, JF ;
Deu, M ;
Barro, C ;
Grivet, L .
EUPHYTICA, 2001, 120 (02) :183-194
[10]   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