Development of microsatellite markers from an enriched genomic library for genetic analysis of melon (Cucumis melo L.)

被引:101
作者
Ritschel P.S. [1 ,3 ]
Lins T.C.D.L. [2 ]
Tristan R.L. [2 ]
Buso G.S.C. [2 ]
Buso J.A. [4 ]
Ferreira M.E. [2 ,5 ]
机构
[1] Cellular Biology Department, IB - University of Brasília, Campus Universitário, CEP 70.910-900, Brasilia, DF, Asa Norte
[2] Embrapa Genetic Rsrc. and Biotech., CEP 70.879-970, Brasilia, DF
[3] Embrapa Vegetable Crops, CEP 70.359-970 Brasilia, DF
[4] Embrapa Intl. Coop. Coordination, Estação Parque Rural, CEP 70.770-901, Brasilia, DF
[5] Cathol. Univ. of Brasília, CAMPUS II - SGAN Quadra 916, Módulo B, Brasília, DF, CEP: 70790-160
关键词
Microsatellite Marker; Melon; Genomic Library; Polymorphism Information Content; RAPD Marker;
D O I
10.1186/1471-2229-4-9
中图分类号
学科分类号
摘要
Background: Despite the great advances in genomic technology observed in several crop species, the availability of molecular tools such as microsatellite markers has been limited in melon (Cucumis melo L.) and cucurbit species. The development of microsatellite markers will have a major impact on genetic analysis and breeding of melon, especially on the generation of marker saturated genetic maps and implementation of marker assisted breeding programs. Genomic microsatellite enriched libraries can be an efficient alternative for marker development in such species. Results: Seven hundred clones containing microsatellite sequences from a Tsp-AG/TC microsatellite enriched library were identified and one-hundred and forty-four primer pairs designed and synthesized. When 67 microsatellite markers were tested on a panel of melon and other cucurbit accessions, 65 revealed DNA polymorphisms among the melon accessions. For some cucurbit species, such as Cucumis sativus, up to 50% of the melon microsatellite markers could be readily used for DNA polymophism assessment, representing a significant reduction of marker development costs. A random sample of 25 microsatellite markers was extracted from the new microsatellite marker set and characterized on 40 accessions of melon, generating an allelic frequency database for the species. The average expected heterozygosity was 0.52, varying from 0.45 to 0.70, indicating that a small set of selected markers should be sufficient to solve questions regarding genotype identity and variety protection. Genetic distances based on microsatellite polymorphism were congruent with data obtained from RAPD marker analysis. Mapping analysis was initiated with 55 newly developed markers and most primers showed segregation according to Mendelian expectations. Linkage analysis detected linkage between 56% of the markers, distributed in nine linkage groups. Conclusions: Genomic library microsatellite enrichment is an efficient procedure for marker development in melon. One-hundred and forty-four new markers were developed from Tsp-AG/TC genomic library. This is the first reported attempt of successfully using enriched library for microsatellite marker development in the species. A sample of the microsatellite markers tested proved efficient for genetic analysis of melon, including genetic distance estimates and identity tests. Linkage analysis indicated that the markers developed are dispersed throughout the genome and should be very useful for genetic analysis of melon.
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页数:37
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