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PMID: 14504243 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

A high-density genetic recombination map of sequence-tagged sites for sorghum, as a framework for comparative structural and evolutionary genomics of tropical grains and grasses.

Genetics ·Vol. 165 ·No. 1 ·2003-09-00 ·Pages 367-86

Bowers JE, Abbey C, Anderson S, Chang C, Draye X, Hoppe AH, Jessup R, Lemke C, Lennington J, Li Z, Lin YR, Liu SC, Luo L, Marler BS, Ming R, Mitchell SE, Qiang D, Reischmann K, Schulze SR, Skinner DN, Wang YW, Kresovich S, Schertz KF, Paterson AH

Abstract

We report a genetic recombination map for Sorghum of 2512 loci spaced at average 0.4 cM ( approximately 300 kb) intervals based on 2050 RFLP probes, including 865 heterologous probes that foster comparative genomics of Saccharum (sugarcane), Zea (maize), Oryza (rice), Pennisetum (millet, buffelgrass), the Triticeae (wheat, barley, oat, rye), and Arabidopsis. Mapped loci identify 61.5% of the recombination events in this progeny set and reveal strong positive crossover interference acting across intervals of </=50 cM. Significant variations in DNA marker density are related to possible centromeric regions and to probable chromosome structural rearrangements between Sorghum bicolor and S. propinquum, but not to variation in levels of intraspecific allelic richness. While cDNA and genomic clones are similarly distributed across the genome, SSR-containing clones show different abundance patterns. Rapidly evolving hypomethylated DNA may contribute to intraspecific genomic differentiation. Nonrandom distribution patterns of multiple loci detected by 357 probes suggest ancient chromosomal duplication followed by extensive rearrangement and gene loss. Exemplifying the value of these data for comparative genomics, we support and extend prior findings regarding maize-sorghum synteny-in particular, 45% of comparative loci fall outside the inferred colinear/syntenic regions, suggesting that many small rearrangements have occurred since maize-sorghum divergence. These genetically anchored sequence-tagged sites will foster many structural, functional and evolutionary genomic studies in major food, feed, and biomass crops.

MeSH Terms
Biological Evolution Chromosome Mapping Genes, Dominant Genetic Markers Genome, Plant Hybridization, Genetic Poaceae/genetics Recombination, Genetic Sequence Tagged Sites Sorghum/genetics
Chemicals
Genetic Markers
Authors & Affiliations
24 authors, click to expand affiliations / ORCID
Bowers John E
Plant Genome Mapping Laboratory, University of Georgia, Athens, Georgia 30602, USA.
Abbey Colette
Anderson Sharon
Chang Charlene
Draye Xavier
Hoppe Alison H
Jessup Russell
Lemke Cornelia
Lennington Jennifer
Li Zhikang
Lin Yann-Rong
Liu Sin-Chieh
Luo Lijun
Marler Barry S
Ming Reiguang
Mitchell Sharon E
Qiang Dou
Reischmann Kim
Schulze Stefan R
Skinner D Neil
Wang Yue-Wen
Kresovich Stephen
Schertz Keith F
Paterson Andrew H
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Article Info
Journal
Genetics
Abbr.
Genetics
ISSN
0016-6731
Published
2003-09-00
Pages
367-86
Language
English
Region
United States
NLM ID
0374636
PMCID
PMC1462765
Subset
IM
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