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Identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton

Plant architecture, flowering time and maturity traits are important determinants of yield and fiber quality of cotton. Genetic dissection of loci determining these yield and quality components is complicated by numerous loci with alleles conferring small differences. Therefore, mapping populations...

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Autores principales: Chandnani, Rahul, Kim, Changsoo, Patel, Jinesh D., Guo, Hui, Shehzad, Tariq, Wallace, Jason G., He, Daohua, Zhang, Zhengsheng, Adhikari, Jeevan, Khanal, Sameer, Chee, Peng W., Paterson, Andrew H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9433993/
https://www.ncbi.nlm.nih.gov/pubmed/36061803
http://dx.doi.org/10.3389/fpls.2022.981682
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author Chandnani, Rahul
Kim, Changsoo
Patel, Jinesh D.
Guo, Hui
Shehzad, Tariq
Wallace, Jason G.
He, Daohua
Zhang, Zhengsheng
Adhikari, Jeevan
Khanal, Sameer
Chee, Peng W.
Paterson, Andrew H.
author_facet Chandnani, Rahul
Kim, Changsoo
Patel, Jinesh D.
Guo, Hui
Shehzad, Tariq
Wallace, Jason G.
He, Daohua
Zhang, Zhengsheng
Adhikari, Jeevan
Khanal, Sameer
Chee, Peng W.
Paterson, Andrew H.
author_sort Chandnani, Rahul
collection PubMed
description Plant architecture, flowering time and maturity traits are important determinants of yield and fiber quality of cotton. Genetic dissection of loci determining these yield and quality components is complicated by numerous loci with alleles conferring small differences. Therefore, mapping populations segregating for smaller numbers and sizes of introgressed segments is expected to facilitate dissection of these complex quantitative traits. At an advanced stage in the development of reciprocal advanced backcross populations from crosses between elite Gossypium hirsutum cultivar ‘Acala Maxxa’ (GH) and G. barbadense ‘Pima S6’ (GB), we undertook mapping of plant architectural traits, flowering time and maturity. A total of 284 BC(4)F(1) and BC(4)F(2) progeny rows, 120 in GH and 164 in GB background, were evaluated for phenotype, with only 4 and 3 (of 7) traits showing significant differences among progenies. Genotyping by sequencing yielded 3,186 and 3,026 SNPs, respectively, that revealed a total of 27 QTLs in GH background and 22 in GB, for plant height, days to flowering, residual flowering at maturity and maturity. More than of 90% QTLs identified in both backgrounds had small effects (%PV < 10), supporting the merit of this population structure to reduce background noise and small effect QTLs. Germplasm developed in this study may serve as potential pre-breeding material to develop improved cotton cultivars.
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spelling pubmed-94339932022-09-02 Identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton Chandnani, Rahul Kim, Changsoo Patel, Jinesh D. Guo, Hui Shehzad, Tariq Wallace, Jason G. He, Daohua Zhang, Zhengsheng Adhikari, Jeevan Khanal, Sameer Chee, Peng W. Paterson, Andrew H. Front Plant Sci Plant Science Plant architecture, flowering time and maturity traits are important determinants of yield and fiber quality of cotton. Genetic dissection of loci determining these yield and quality components is complicated by numerous loci with alleles conferring small differences. Therefore, mapping populations segregating for smaller numbers and sizes of introgressed segments is expected to facilitate dissection of these complex quantitative traits. At an advanced stage in the development of reciprocal advanced backcross populations from crosses between elite Gossypium hirsutum cultivar ‘Acala Maxxa’ (GH) and G. barbadense ‘Pima S6’ (GB), we undertook mapping of plant architectural traits, flowering time and maturity. A total of 284 BC(4)F(1) and BC(4)F(2) progeny rows, 120 in GH and 164 in GB background, were evaluated for phenotype, with only 4 and 3 (of 7) traits showing significant differences among progenies. Genotyping by sequencing yielded 3,186 and 3,026 SNPs, respectively, that revealed a total of 27 QTLs in GH background and 22 in GB, for plant height, days to flowering, residual flowering at maturity and maturity. More than of 90% QTLs identified in both backgrounds had small effects (%PV < 10), supporting the merit of this population structure to reduce background noise and small effect QTLs. Germplasm developed in this study may serve as potential pre-breeding material to develop improved cotton cultivars. Frontiers Media S.A. 2022-08-18 /pmc/articles/PMC9433993/ /pubmed/36061803 http://dx.doi.org/10.3389/fpls.2022.981682 Text en Copyright © 2022 Chandnani, Kim, Patel, Guo, Shehzad, Wallace, He, Zhang, Adhikari, Khanal, Chee and Paterson. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Chandnani, Rahul
Kim, Changsoo
Patel, Jinesh D.
Guo, Hui
Shehzad, Tariq
Wallace, Jason G.
He, Daohua
Zhang, Zhengsheng
Adhikari, Jeevan
Khanal, Sameer
Chee, Peng W.
Paterson, Andrew H.
Identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton
title Identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton
title_full Identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton
title_fullStr Identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton
title_full_unstemmed Identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton
title_short Identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton
title_sort identification of small effect quantitative trait loci of plant architectural, flowering, and early maturity traits in reciprocal interspecific introgression population in cotton
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9433993/
https://www.ncbi.nlm.nih.gov/pubmed/36061803
http://dx.doi.org/10.3389/fpls.2022.981682
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