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An EST-SSR based genetic linkage map and identification of QTLs for anthracnose disease resistance in water yam (Dioscorea alata L.)

Water yam (Dioscorea alata L.) is one of the most important food yams with wide geographical distribution in the tropics. One of the major constraints to water yam production is anthracnose disease caused by a fungus, Colletotrichum gloeosporioides (Penz.). There are no economically feasible solutio...

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Autores principales: Bhattacharjee, Ranjana, Nwadili, Christian O., Saski, Christopher A., Paterne, Agre, Scheffler, Brian E., Augusto, Joao, Lopez-Montes, Antonio, Onyeka, Joseph T., Kumar, P. Lava, Bandyopadhyay, Ranajit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6179188/
https://www.ncbi.nlm.nih.gov/pubmed/30303959
http://dx.doi.org/10.1371/journal.pone.0197717
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author Bhattacharjee, Ranjana
Nwadili, Christian O.
Saski, Christopher A.
Paterne, Agre
Scheffler, Brian E.
Augusto, Joao
Lopez-Montes, Antonio
Onyeka, Joseph T.
Kumar, P. Lava
Bandyopadhyay, Ranajit
author_facet Bhattacharjee, Ranjana
Nwadili, Christian O.
Saski, Christopher A.
Paterne, Agre
Scheffler, Brian E.
Augusto, Joao
Lopez-Montes, Antonio
Onyeka, Joseph T.
Kumar, P. Lava
Bandyopadhyay, Ranajit
author_sort Bhattacharjee, Ranjana
collection PubMed
description Water yam (Dioscorea alata L.) is one of the most important food yams with wide geographical distribution in the tropics. One of the major constraints to water yam production is anthracnose disease caused by a fungus, Colletotrichum gloeosporioides (Penz.). There are no economically feasible solutions as chemical sprays or cultural practices, such as crop rotation are seldom convenient for smallholder farmers for sustainable control of the disease. Breeding for development of durable genetic resistant varieties is known to offer lasting solution to control endemic disease threats to crop production. However, breeding for resistance to anthracnose has been slow considering the biological constraints related to the heterozygous and vegetative propagation of the crop. The development of saturated linkage maps with high marker density, such as SSRs, followed by identification of QTLs can accelerate the speed and precision of resistance breeding in water yam. In a previous study, a total of 1,152 EST-SSRs were developed from >40,000 EST-sequences generated from two D. alata genotypes. A set of 380 EST-SSRs were validated as polymorphic when tested on two diverse parents targeted for anthracnose disease and were used to generate a saturated linkage map. Majority of the SSRs (60.2%) showed Mendelian segregation pattern and had no effect on the construction of linkage map. All 380 EST-SSRs were mapped into 20 linkage groups, and covered a total length of 3229.5 cM. Majority of the markers were mapped on linkage group 1 (LG 1) comprising of 97 EST-SSRs. This is the first genetic linkage map of water yam constructed using EST-SSRs. QTL localization was based on phenotypic data collected over a 3-year period of inoculating the mapping population with the most virulent strain of C. gloeosporioides from West Africa. Based on threshold LOD scores, one QTL was consistently observed on LG 14 in all the three years and average score data. This QTL was found at position interval of 71.1–84.8 cM explaining 68.5% of the total phenotypic variation in the average score data. The high marker density allowed identification of QTLs and association for anthracnose disease, which could be validated in other mapping populations and used in marker-assisted breeding in D. alata improvement programmes.
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spelling pubmed-61791882018-10-19 An EST-SSR based genetic linkage map and identification of QTLs for anthracnose disease resistance in water yam (Dioscorea alata L.) Bhattacharjee, Ranjana Nwadili, Christian O. Saski, Christopher A. Paterne, Agre Scheffler, Brian E. Augusto, Joao Lopez-Montes, Antonio Onyeka, Joseph T. Kumar, P. Lava Bandyopadhyay, Ranajit PLoS One Research Article Water yam (Dioscorea alata L.) is one of the most important food yams with wide geographical distribution in the tropics. One of the major constraints to water yam production is anthracnose disease caused by a fungus, Colletotrichum gloeosporioides (Penz.). There are no economically feasible solutions as chemical sprays or cultural practices, such as crop rotation are seldom convenient for smallholder farmers for sustainable control of the disease. Breeding for development of durable genetic resistant varieties is known to offer lasting solution to control endemic disease threats to crop production. However, breeding for resistance to anthracnose has been slow considering the biological constraints related to the heterozygous and vegetative propagation of the crop. The development of saturated linkage maps with high marker density, such as SSRs, followed by identification of QTLs can accelerate the speed and precision of resistance breeding in water yam. In a previous study, a total of 1,152 EST-SSRs were developed from >40,000 EST-sequences generated from two D. alata genotypes. A set of 380 EST-SSRs were validated as polymorphic when tested on two diverse parents targeted for anthracnose disease and were used to generate a saturated linkage map. Majority of the SSRs (60.2%) showed Mendelian segregation pattern and had no effect on the construction of linkage map. All 380 EST-SSRs were mapped into 20 linkage groups, and covered a total length of 3229.5 cM. Majority of the markers were mapped on linkage group 1 (LG 1) comprising of 97 EST-SSRs. This is the first genetic linkage map of water yam constructed using EST-SSRs. QTL localization was based on phenotypic data collected over a 3-year period of inoculating the mapping population with the most virulent strain of C. gloeosporioides from West Africa. Based on threshold LOD scores, one QTL was consistently observed on LG 14 in all the three years and average score data. This QTL was found at position interval of 71.1–84.8 cM explaining 68.5% of the total phenotypic variation in the average score data. The high marker density allowed identification of QTLs and association for anthracnose disease, which could be validated in other mapping populations and used in marker-assisted breeding in D. alata improvement programmes. Public Library of Science 2018-10-10 /pmc/articles/PMC6179188/ /pubmed/30303959 http://dx.doi.org/10.1371/journal.pone.0197717 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open access article, free of all copyright, and may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose. The work is made available under the Creative Commons CC0 (https://creativecommons.org/publicdomain/zero/1.0/) public domain dedication.
spellingShingle Research Article
Bhattacharjee, Ranjana
Nwadili, Christian O.
Saski, Christopher A.
Paterne, Agre
Scheffler, Brian E.
Augusto, Joao
Lopez-Montes, Antonio
Onyeka, Joseph T.
Kumar, P. Lava
Bandyopadhyay, Ranajit
An EST-SSR based genetic linkage map and identification of QTLs for anthracnose disease resistance in water yam (Dioscorea alata L.)
title An EST-SSR based genetic linkage map and identification of QTLs for anthracnose disease resistance in water yam (Dioscorea alata L.)
title_full An EST-SSR based genetic linkage map and identification of QTLs for anthracnose disease resistance in water yam (Dioscorea alata L.)
title_fullStr An EST-SSR based genetic linkage map and identification of QTLs for anthracnose disease resistance in water yam (Dioscorea alata L.)
title_full_unstemmed An EST-SSR based genetic linkage map and identification of QTLs for anthracnose disease resistance in water yam (Dioscorea alata L.)
title_short An EST-SSR based genetic linkage map and identification of QTLs for anthracnose disease resistance in water yam (Dioscorea alata L.)
title_sort est-ssr based genetic linkage map and identification of qtls for anthracnose disease resistance in water yam (dioscorea alata l.)
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6179188/
https://www.ncbi.nlm.nih.gov/pubmed/30303959
http://dx.doi.org/10.1371/journal.pone.0197717
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