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Volume 35 Issue 12
Dec.  2008
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Article Contents

QTL mapping in A-genome diploid Asiatic cotton and their congruence analysis with AD-genome tetraploid cotton in genus Gossypium

doi: 10.1016/S1673-8527(08)60231-3
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  • Corresponding author: E-mail address: cotton@njau.edu.cn (Tianzhen Zhang)
  • Received Date: 2008-05-29
  • Accepted Date: 2008-09-04
  • Rev Recd Date: 2008-08-05
  • Available Online: 2008-12-23
  • Publish Date: 2008-12-20
  • Asiatic cotton (Gossypium arboreum L.) is an Old World cultivated cotton species. The sinense race was planted extensively in China. Due to the advances in spinning technology during the last century, the species was replaced by the New World allotetraploid cotton G. hirsutum L. Gossypium arboreum is still grown in India and Pakistan and also used as an elite in current cotton breeding programs. In addition, G. arboreum serves as a model for genomic research in Gossypium. In the present study, we generated an A-genome diploid cotton intraspecific genetic map including 264 SSR loci with three morphological markers mapped to 13 linkage groups. The map spans 2,508.71 cM with an average distance of 9.4 cM between adjacent loci. A population containing 176 F2:3 families was used to perform quantitative trait loci (QTL) mapping for 17 phenotypes using Multiple QTL Model (MQM) of MapQTL ver 5.0. Overall, 108 QTLs were detected on 13 chromosomes. Thirty-one QTLs for yield and its components were detected in the F2 population. Forty-one QTLs for yield and its components were detected in the F2:3 families with a total of 43 QTLs for fiber qualities. Two QTLs for seed cotton weight/plant and lint index and three QTLs for seed index were consistently detected both in F2 and F2:3. Most QTLs for fiber qualities and yields were located at the same interval or neighboring intervals. These results indicated that the negative correlation between fiber qualities and yield traits may result from either pleiotropic effect of one gene or linkage effects of multiple closely linked genes.
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  • [1]
    Adams, K.L., Cronn, R., Percifield, R. et al. Genes duplicated by polyploidy show unequal contribution to the transcriptome and organ-specific reciprocal silencing Proc. Natl. Acad. Sci. USA, 100 (2003),pp. 4649-4654
    [2]
    Brubaker, C.L., Paterson, A.H., Wendel, J.F. Comparative genetic mapping of allotetraploid cotton and its diploid progenitors Genome, 42 (1999),pp. 184-203
    [3]
    Chee, P., Draye, X., Jiang, C. et al. Theor. Appl. Genet., 111 (2005),pp. 757-763
    [4]
    Chee, P., Draye, X., Jiang, C.X. et al. Theor. Appl. Genet., 111 (2005),pp. 772-781
    [5]
    Cronn, R.C., Small, R.L., Wendel, J.F. Duplicated genes evolve independently after polyploid formation in cotton Proc. Natl. Acad. Sci. USA, 96 (1999),pp. 14406-14411
    [6]
    Desai, A., Chee, D.P., Rong, J.K. et al. Genome, 49 (2006),pp. 336-345
    [7]
    , Palmer, M.B., Main, D., Tomkins, J.P. et al. Cotton genome mapping with new microsatellites from Acala ‘Maxxa’ BAC-ends Mol. Genet. Genomics, 275 (2006),pp. 479-491
    [8]
    Fryxell, P.A. Rheedea, 2 (1992),pp. 108-165
    [9]
    Guo, W.Z., Cai, C.P., Wang, C.B. et al. Genetics, 176 (2007),pp. 527-541
    [10]
    Guo, W.Z., Zhou, B.L., Yang, L.M. et al. J. Integr. Plant Biol., 48 (2006),pp. 1008-1017
    [11]
    Han, Z.G., Guo, W.Z., Song, X.L. et al. Mol. Genet. Genomics, 272 (2004),pp. 308-327
    [12]
    He, D.H., Lin, Z.X., Zhang, X.L. et al. Euphytica, 153 (2007),pp. 181-197
    [13]
    Jiang, C., Wright, R.J., El-zik, K.M. et al. Proc. Natl. Acad. Sci. USA, 95 (1998),pp. 4419-4424
    [14]
    Jiang, C., Chee, P.W., Draye, X. et al. Evolution, 54 (2000),pp. 798-814
    [15]
    Jiang, C., Wright, R., Woo, S. et al. Theor. Appl. Genet., 100 (2000),pp. 409-418
    [16]
    Kohel, R.J., Yu, J., Park, Y.H. et al. Molecular mapping and characterization of traits controlling fiber quality in cotton Euphytica, 121 (2001),pp. 163-172
    [17]
    Lacape, J.M., Nguyen, T.B., Courtois, B. et al. Crop Sci., 45 (2005),pp. 123-140
    [18]
    Lacape, J.M., Nguyen, T.B., Thibivilliers, S. et al. Genome, 46 (2003),pp. 612-626
    [19]
    Lin, Z.X., Zhang, X.L., Nei, Y.C. et al. Construction genetic linkage map for cotton based on SRAP China Sci. Bull., 48 (2003),pp. 2063-2067
    [20]
    Liu, D., Guo, X., Lin, Z.X. et al. Genet. Resour. Crop Evol., 53 (2006),pp. 1145-1152
    [21]
    Lynch, M., Force, A. The probability of duplicate gene preservation by subfunctionalization Genetics, 154 (2000),pp. 459-473
    [22]
    Ma, X.X., Zhou, B.L., Lü, Y.H. et al. J. Integr. Plant Biol., 50 (2008),pp. 491-502
    [23]
    Mei, M., Syed, N.H., Gao, W. et al. Theor. Appl. Genet., 108 (2004),pp. 280-291
    [24]
    Nguyen, T.B., Giband, M., Brottier, P. et al. Wide coverage of teraploid cotton genome using newly developed microsatellite markers Theor. Appl. Genet., 109 (2004),pp. 167-175
    [25]
    Park, Y.H., Alabady, M.S., Ulloa, M. et al. Genetic mapping of new cotton fiber loci using EST-derived microsatellites in an interspecific recombinant inbred (RIL) cotton population Mol. Genet. Genomics, 274 (2005),pp. 428-441
    [26]
    Paterson, A.H., Saranga, Y., Menz, M. et al. QTL analysis of genotype × environment interactions affecting cotton fiber quality Theor. Appl. Genet., 106 (2003),pp. 384-396
    [27]
    Rastogi, S., Liberles, D. Subfunctionalization of duplicated genes as a transition state to neofunctionalization BMC Evol. Biol., 5 (2005),pp. 28-last page
    [28]
    Reinisch, A., Dong, J.M., Brubaker, C.L. et al. Genetics, 138 (1994),pp. 829-847
    [29]
    Rong, J., Abbey, C., Bowers, J.E. et al. Genetics, 166 (2004),pp. 389-417
    [30]
    Rong, J., Feltus, F.A., Waghmare, V.N. et al. Meta-analysis of polyploid cotton QTLs shows unequal contributions of subgenomes to a complex network of genes and gene clusters implicated in lint fiber development Genetics, 176 (2007),pp. 2577-2588
    [31]
    Shappley, Z.W., Jenkins, J.N., Meredith, W.R. et al. Theor. Appl. Genet., 97 (1998),pp. 756-761
    [32]
    Shen, X.L., Guo, W.Z., Zhu, X.F. et al. Molecular mapping of QTLs for fiber qualities in three diverse lines in upland cotton using SSR markers Mol. Breed., 15 (2005),pp. 169-181
    [33]
    Shen, X.L., Guo, W.Z., Lu, Q.X. et al. Genetic mapping of quantitative trait loci fot fiber quality and yield trait by RIL approach in Upland cotton Euphytica, 155 (2007),pp. 371-380
    [34]
    Song, X.L., Wang, K., Guo, W.Z. et al. Genome, 48 (2005),pp. 378-390
    [35]
    Stuber, C.W., Edwards, M.D., Wendel, J.F. Molecular marker facilitated investigations of quantitative trait loci in maize. II factors influencing yield and its component traits Crop Sci., 27 (1987),pp. 639-648
    [36]
    Ulloa, M., Meredith, W.R., Shappley, Z.W. et al. Genetic linkage map and QTL analysis of agronomic and fiber quality traits in intraspecific population Cotton Sci., 4 (2000),pp. 161-170
    [37]
    Ulloa, M., Meredith, W.R., Shappley, Z.W. et al. Theor. Appl. Genet., 104 (2002),pp. 2000-2008
    [38]
    Ulloa, M., Saha, S., Jenkins, J.N. et al. Heredity, 96 (2005),pp. 132-144
    [39]
    van Ooijen, J.W.
    [40]
    Voorrips, R.E. (2002). MapChart 2.1: Software for the graphical presentation of linkage maps and QTLs. Plant Res. Int., Wageningen, the Netherlands.
    [41]
    Wang, B.H., Guo, W.Z., Zhu, X.F. et al. QTL mapping of fiber quality in an elite hybrid derived-RIL population of upland cotton Euphytica, 152 (2006),pp. 367-378
    [42]
    Wendel, J.F. New world tetraploid cotton contains Old World cytoplasm Proc. Natl. Acad. Sci. USA, 86 (1989),pp. 4132-4136
    [43]
    Wright, R., Thaxton, P., El-Zik, K. et al. Genetics, 149 (1998),pp. 1987-1996
    [44]
    Xiang, X.L., Shen, D.Z.
    [45]
    Yu, J., Park, Y.H., Lazo, G. et al. Molecular mapping of cotton genome: QTL analysis of fiber quality properties Proc. Beltwide Cotton Res. Prod. Conf. (1998),p. 485
    [46]
    Zhang, J., Guo, W.Z., Zhang, T.Z. Theor. Appl. Genet., 105 (2002),pp. 1166-1174
    [47]
    Zhang, T.Z., Yuan, Y.L., Yu, J. et al. Molecular tagging of a major QTL for fiber strength in upland cotton and its marker-assisted selection Theor. Appl. Genet., 106 (2003),pp. 262-268
    [48]
    Zhao, X.P., Si, Y., Hanson, R.E. et al. Dispersed repetitive DNA has spread to new genomes since polyploid formation in cotton Genome Res., 8 (1998),pp. 479-492
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