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M. Mei, Naeem Syed, Naeem Syed, Wenxiang Gao, P. Thaxton, C. Smith, D. Stelly, Zengjian Chen (2004)
Genetic mapping and QTL analysis of fiber-related traits in cotton (Gossypium)Theoretical and Applied Genetics, 108
M. Ulloa, J. Stewart, Enrique Garcia-C., Salvador Godoy-A., Arturo Gaytan-M., N. Acosta (2006)
Cotton Genetic Resources in the Western States of Mexico: In situ Conservation Status and Germplasm Collection for ex situ PreservationGenetic Resources and Crop Evolution, 53
Y. Bolek, K. El-Zik, A. Pepper, A. Bell, C. Magill, P. Thaxton, O. Reddy (2005)
Mapping of verticillium wilt resistance genes in cottonPlant Science, 168
A. Kilian, J. Chen, F. Han, B. Steffenson, A. Kleinhofs (2004)
Towards map-based cloning of the barley stem rust resistance genes Rpg1 and rpg4 using rice as an intergenomic cloning vehiclePlant Molecular Biology, 35
D. Kosambi (1943)
The estimation of map distances from recombination values.Annals of Human Genetics, 12
Jianxin Ma, K. Devos, J. Bennetzen (2004)
Analyses of LTR-retrotransposon structures reveal recent and rapid genomic DNA loss in rice.Genome research, 14 5
L. Cardle, L. Ramsay, D. Milbourne, M. Macaulay, D. Marshall, R. Waugh (2000)
Computational and experimental characterization of physically clustered simple sequence repeats in plants.Genetics, 156 2
Younghoon Park, Magdy Alabady, M. Ulloa, Brad Sickler, T. Wilkins, John Yu, D. Stelly, R. Kohel, O. El-Shihy, R. Cantrell (2005)
Genetic mapping of new cotton fiber loci using EST-derived microsatellites in an interspecific recombinant inbred line cotton populationMolecular Genetics and Genomics, 274
Xin-ping Zhao, Yang Si, R. Hanson, Charles Crane, H. Price, D. Stelly, Jonathan Wendel, Andrew Paterson (1998)
Dispersed repetitive DNA has spread to new genomes since polyploid formation in cotton.Genome research, 8 5
SN Qureshi, S Saha, RV Kantety, JN Jenkins (2004)
EST-SSR: a new class of genetic markers in cottonJ Cotton Sci, 8
S. Saha, M. Karaca, J. Jenkins, A. Zipf, O. Reddy, R. Kantety (2003)
Simple sequence repeats as useful resources to study transcribed genes of cottonEuphytica, 130
Shui Wang, Jia-Wei Wang, N. Yu, Chun-Hong Li, Bin Luo, J. Gou, Ling-Jian Wang, Xiao-Ya Chen (2004)
Control of Plant Trichome Development by a Cotton Fiber MYB Genew⃞The Plant Cell Online, 16
A. Paterson (2002)
What has QTL mapping taught us about plant domestication?The New phytologist, 154 3
Trung Nguyen, M. Giband, P. Brottier, A. Risterucci, J. Lacape (2004)
Wide coverage of the tetraploid cotton genome using newly developed microsatellite markersTheoretical and Applied Genetics, 109
J. Ooijen, C. Maliepaard (1999)
MapQTL (tm) version 3.0: Software for the calculation of QTL positions on genetic maps
S. Boissinot, A. Entezam, Lynn Young, P. Munson, A. Furano (2004)
The insertional history of an active family of L1 retrotransposons in humans.Genome research, 14 7
G. Churchill, R. Doerge (1994)
Empirical threshold values for quantitative trait mapping.Genetics, 138 3
K. Gill, B. Gill, T. Endo, T. Taylor (1996)
Identification and high-density mapping of gene-rich regions in chromosome group 1 of wheat.Genetics, 144 4
H. Shizuya, B. Birren, U. Kim, V. Mancino, T. Slepak, Yoshiaki Tachiiri, Melvin Simon (1992)
Cloning and stable maintenance of 300-kilobase-pair fragments of human DNA in Escherichia coli using an F-factor-based vector.Proceedings of the National Academy of Sciences of the United States of America, 89
J. Lacape, Trung Nguyen, S. Thibivilliers, B. Bojinov, B. Courtois, R. Cantrell, B. Burr, B. Hau (2003)
A combined RFLP-SSR-AFLP map of tetraploid cotton based on a Gossypium hirsutum x Gossypium barbadense backcross population.Genome, 46 4
D. Metzgar, J. Bytof, C. Wills (2000)
Selection against frameshift mutations limits microsatellite expansion in coding DNA.Genome research, 10 1
M. Ulloa, S. Saha, J. Jenkins, W. Meredith, J. McCarty, D. Stelly (2005)
Chromosomal assignment of RFLP linkage groups harboring important QTLs on an intraspecific cotton (Gossypium hirsutum L.) Joinmap.The Journal of heredity, 96 2
C. Smith, J. Cothren (1999)
Rice: origin, history, technology and production.
Josefa González, M. Nefedov, I. Bosdet, F. Casals, O. Calvete, A. Delprat, Heesun Shin, Readman Chiu, Carrie Mathewson, N. Wye, R. Hoskins, J. Schein, P. Jong, A. Ruíz (2005)
A BAC-based physical map of the Drosophila buzzatii genome.Genome research, 15 6
T. Petes (2001)
Meiotic recombination hot spots and cold spotsNature Reviews Genetics, 2
A. Reinisch, Jianghan Dong, C. Brubaker, D. Stelly, J. Wendel, A. Paterson (1994)
A detailed RFLP map of cotton, Gossypium hirsutum x Gossypium barbadense: chromosome organization and evolution in a disomic polyploid genome.Genetics, 138 3
(2005)
Physical mapping of fiber development genes in cotton [abstract
(2005)
netic mapping of new cotton fiber loci using EST - derived microsatellites in an interspecific recombinant inbred ( RIL ) cotton population
(1997)
allotetraploid cotton
S. Altschul, W. Gish, W. Miller, E. Myers, D. Lipman (1990)
Basic local alignment search tool.Journal of molecular biology, 215 3
S. Rozen, H. Skaletsky (2000)
Primer3 on the WWW for general users and for biologist programmers.Methods in molecular biology, 132
Hee-Jin Kim, B. Triplett (2001)
Cotton fiber growth in planta and in vitro. Models for plant cell elongation and cell wall biogenesis.Plant physiology, 127 4
S. Brown (2000)
Cotton: Origin, History, Technology, and ProductionAgricultural History
(1992)
A revised taxonomic interpretation of Gossypium L. (Malvaceae)
J. Lacape, T. Nguyen (2005)
Mapping quantitative trait loci associated with leaf and stem pubescence in cotton.The Journal of heredity, 96 4
Xinlian Shen, Wangzhen Guo, Xiefei Zhu, You-lu Yuan, John Yu, R. Kohel, Tianzhen Zhang (2005)
Molecular mapping of QTLs for fiber qualities in three diverse lines in Upland cotton using SSR markersMolecular Breeding, 15
S. Tanksley, M. Ganal, J. Prince, M. Vicente, M. Bonierbale, P. Broun, T. Fulton, J. Giovannoni, S. Grandillo, G. Martin (1992)
High density molecular linkage maps of the tomato and potato genomes.Genetics, 132 4
R. Kohel, John Yu, Yong-Ha Park, G. Lazo (2004)
Molecular mapping and characterization of traits controlling fiber quality in cottonEuphytica, 121
J. Anderson, G. Churchill, J. Autrique, S. Tanksley, M. Sorrells (1993)
Optimizing parental selection for genetic linkage maps.Genome, 36 1
M. Morgante, M. Hanafey, W. Powell (2002)
Microsatellites are preferentially associated with nonrepetitive DNA in plant genomesNature Genetics, 30
(2004)
A 3347-locus genetic
Mauricio Rota, R. Kantety, Ju-Kyung Yu, M. Sorrells (2005)
Nonrandom distribution and frequencies of genomic and EST-derived microsatellite markers in rice, wheat, and barleyBMC Genomics, 6
C. Hong, S. Lee, J. Park, P. Plaha, Y. Park, Y. Lee, J. Choi, K. Kim, J. Lee, Joon Lee, H. Jin, S. Choi, Y. Lim (2004)
Construction of a BAC library of Korean ginseng and initial analysis of BAC-end sequencesMolecular Genetics and Genomics, 271
(2005)
barbadense backcross population
D. Botstein, R. White, M. Skolnick, R. Davis (1980)
Construction of a genetic linkage map in man using restriction fragment length polymorphisms.American journal of human genetics, 32 3
M. Islam-Faridi, K. Childs, P. Klein, G. Hodnett, M. Menz, R. Klein, W. Rooney, J. Mullet, D. Stelly, H. Price (2002)
A molecular cytogenetic map of sorghum chromosome 1. Fluorescence in situ hybridization analysis with mapped bacterial artificial chromosomes.Genetics, 161 1
R. Varshney, A. Graner, M. Sorrells (2005)
Genic microsatellite markers in plants: features and applications.Trends in biotechnology, 23 1
D. Tautz, Schlötterer (1994)
Simple sequences.Current opinion in genetics & development, 4 6
M. Ulloa, W. Jr, Z. Shappley, A. Kahler (2002)
RFLP genetic linkage maps from four F2.3 populations and a joinmap of Gossypium hirsutum L.Theoretical and Applied Genetics, 104
C. Brubaker, A. Paterson, J. Wendel (1999)
Comparative genetic mapping of allotetraploid cotton and its diploid progenitorsGenome, 42
Chun-xiao Jiang, R. Wright, K. El-Zik, Andrew Paterson (1998)
Polyploid formation created unique avenues for response to selection in Gossypium (cotton).Proceedings of the National Academy of Sciences of the United States of America, 95 8
J. Hof, S. Saha (1997)
Cotton fibers can undergo cell division.American journal of botany, 84 9
D. Stelly (1993)
Interfacing cytogenetics with the cotton genome mapping effort
Jeong-soon Kim, P. Klein, R. Klein, H. Price, J. Mullet, D. Stelly (2005)
Molecular Cytogenetic Maps of Sorghum Linkage Groups 2 and 8Genetics, 169
A. Arpat, M. Waugh, J. Sullivan, Michael Gonzales, D. Frisch, D. Main, T. Wood, A. Leslie, R. Wing, T. Wilkins (2004)
Functional genomics of cell elongation in developing cotton fibersPlant Molecular Biology, 54
P. Gupta, H. Balyan, P. Sharma (2002)
Microsatellites in plants: a new class of molecular markersCurrent Science, 70
(1995)
JoinMap version 2.0: software for the calculation of genetic linkage
(2005)
A (2005) A BAC-based physical map
M. Kock, B. Brandwagt, G. Bonnema, P. Wit, P. Lindhout (2005)
The tomato Orion locus comprises a unique class of Hcr9 genesMolecular Breeding, 15
C. Wang, M. Ulloa, P. Roberts (2006)
Identification and mapping of microsatellite markers linked to a root-knot nematode resistance gene (rkn1) in Acala NemX cotton (Gossypium hirsutum L.)Theoretical and Applied Genetics, 112
Ty 3 / gypsy retrotransposons in Egyptian cotton ( G . barbadense )
(1999)
Cottonseed process
Zhiguo Han, Wanlin Guo, X.-L. Song, T. Zhang (2004)
Genetic mapping of EST-derived microsatellites from the diploid Gossypium arboreum in allotetraploid cottonMolecular Genetics and Genomics, 272
S. Liu, S. Saha, D. Stelly, B. Burr, R. Cantrell (2000)
Chromosomal assignment of microsatellite loci in cotton.The Journal of heredity, 91 4
Xianliang Song, Kai Wang, Wangzhen Guo, Jun Zhang, Tianzhen Zhang (2005)
A comparison of genetic maps constructed from haploid and BC1 mapping populations from the same crossing between Gossypium hirsutum L. and Gossypium barbadense L.Genome, 48 3
DD Kosambi (1944)
The estimation of map distances from recombination valuesAnn Eugen, 12
Samina Qureshi, S. Saha, R. Kantety, J. Jenkins (2004)
MOLECULAR BIOLOGY AND PHYSIOLOGY EST-SSR: A New Class of Genetic Markers in Cotton
J. Tomkins, D. Peterson, T. Yang, D. Main, T. Wilkins, A. Paterson, R. Wing (2001)
Development of genomic resources for cotton (Gossypium hirsutum L.): BAC library construction, preliminary STC analysis, and identification of clones associated with fiber developmentMolecular Breeding, 8
J. Rong, J. Bowers, S. Schulze, V. Waghmare, Carl Rogers, Gary Pierce, Hua Zhang, J. Estill, A. Paterson (2005)
Comparative genomics of Gossypium and Arabidopsis: unraveling the consequences of both ancient and recent polyploidy.Genome research, 15 9
C. Nievergelt, Douglas Smith, J. Kohlenberg, N. Schork (2004)
Large-scale integration of human genetic and physical maps.Genome research, 14 6
Long Mao, T. Wood, Yeisoo Yu, M. Budiman, Jeffery Tomkins, S. Woo, S. Woo, M. Sasinowski, G. Presting, D. Frisch, S. Goff, R. Dean, R. Dean, R. Wing (2000)
Rice transposable elements: a survey of 73,000 sequence-tagged-connectors.Genome research, 10 7
(2004)
High-throughput development of new molecular markers for cotton
(2004)
microsatellite loci in cotton
Zhongxu Lin, D. He, Xianlong Zhang, Y. Nie, Xiao-ping Guo, Chunda Feng, J. Stewart (2005)
Linkage map construction and mapping QTL for cotton fibre quality using SRAP, SSR and RAPDPlant Breeding, 124
M. Ulloa, W. Meredith (2000)
Genetic linkage map and QTL analysis of agronomic and fiber quality traits in an intraspecific population.Journal of cotton science, 4
(1999)
Drosophila buzzatii genome
J. Rong, C. Abbey, J. Bowers, C. Brubaker, Charlene Chang, P. Chee, T. Delmonte, Xiaoling Ding, Juan Garza, Barry Marler, Chan-hwa Park, Gary Pierce, K. Rainey, V. Rastogi, S. Schulze, N. Trolinder, J. Wendel, T. Wilkins, T. Williams-Coplin, R. Wing, R. Wright, Xinping Zhao, Linghuan Zhu, A. Paterson (2004)
A 3347-Locus Genetic Recombination Map of Sequence-Tagged Sites Reveals Features of Genome Organization, Transmission and Evolution of Cotton (Gossypium)Genetics, 166
T. Wilkins, A. Arpat (2005)
The cotton fiber transcriptomePhysiologia Plantarum, 124
(2004)
Genetic mapping of EST
(1999)
Cotton marketing
E. Taliercio, M. Ulloa (2003)
The DNA Sequence of a Gypsy Element from Gossypium hirsutum L. and Characterization of Gypsy Elements in Three Gossypium SpeciesDNA Sequence, 14
(2001)
Cotton fiber growth in planta
Fine mapping and positional cloning will eventually improve with the anchoring of additional markers derived from genomic clones such as BACs. From 2,603 new BAC-end genomic sequences from Gossypium hirsutum Acala ‘Maxxa’, 1,316 PCR primer pairs (designated as MUSB) were designed to flank microsatellite or simple sequence repeat motif sequences. Most (1164 or 88%) MUSB primer pairs successfully amplified DNA from three species of cotton with an average of three amplicons per marker and 365 markers (21%) were polymorphic between G. hirsutum and G. barbadense. An interspecific RIL population developed from the above two entries was used to map 433 marker loci and 46 linkage groups with a genetic distance of 2,126.3 cM covering approximately 45% of the cotton genome and an average distance between two loci of 4.9 cM. Based on genome-specific chromosomes identified in G. hirsutum tetraploid (A and D), 56.9% of the coverage was located on the A subgenome while 39.7% was assigned to the D subgenome in the genetic map, suggesting that the A subgenome may be more polymorphic and recombinationally active than originally thought. The linkage groups were assigned to 23 of the 26 chromosomes. This is the first genetic map in which the linkage groups A01 and A02/D03 have been assigned to specific chromosomes. In addition the MUSB-derived markers from BAC-end sequences markers allows fine genetic and QTL mapping of important traits and for the first time provides reconciliation of the genetic and physical maps. Limited QTL analyses suggested that loci on chromosomes 2, 3, 12, 15 and 18 may affect variation in fiber quality traits. The original BAC clones containing the newly mapped MUSB that tag the QTLs provide critical DNA regions for the discovery of gene sequences involved in biological processes such as fiber development and pest resistance in cotton.
Molecular Genetics and Genomics – Springer Journals
Published: Feb 25, 2006
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