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Genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut

Groundnut productivity and quality have been impeded by rising temperatures in semi-arid environments. Hence, understanding the effects and molecular mechanisms of heat stress tolerance will aid in tackling yield losses. In this context, a recombinant inbred line (RIL) population was developed and p...

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Autores principales: Sharma, Vinay, Gangurde, Sunil S., Nayak, Spurthi N., Gowda, Anjan S., Sukanth, B.S., Mahadevaiah, Supriya S., Manohar, Surendra S., Choudhary, Rakeshkumar S., Anitha, T., Malavalli, Sachin S., Srikanth, S.N., Bajaj, Prasad, Sharma, Shailendra, Varshney, Rajeev K., Latha, Putta, Janila, Pasupuleti, Bhat, Ramesh S., Pandey, Manish K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10243373/
https://www.ncbi.nlm.nih.gov/pubmed/37287715
http://dx.doi.org/10.3389/fpls.2023.1182867
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author Sharma, Vinay
Gangurde, Sunil S.
Nayak, Spurthi N.
Gowda, Anjan S.
Sukanth, B.S.
Mahadevaiah, Supriya S.
Manohar, Surendra S.
Choudhary, Rakeshkumar S.
Anitha, T.
Malavalli, Sachin S.
Srikanth, S.N.
Bajaj, Prasad
Sharma, Shailendra
Varshney, Rajeev K.
Latha, Putta
Janila, Pasupuleti
Bhat, Ramesh S.
Pandey, Manish K.
author_facet Sharma, Vinay
Gangurde, Sunil S.
Nayak, Spurthi N.
Gowda, Anjan S.
Sukanth, B.S.
Mahadevaiah, Supriya S.
Manohar, Surendra S.
Choudhary, Rakeshkumar S.
Anitha, T.
Malavalli, Sachin S.
Srikanth, S.N.
Bajaj, Prasad
Sharma, Shailendra
Varshney, Rajeev K.
Latha, Putta
Janila, Pasupuleti
Bhat, Ramesh S.
Pandey, Manish K.
author_sort Sharma, Vinay
collection PubMed
description Groundnut productivity and quality have been impeded by rising temperatures in semi-arid environments. Hence, understanding the effects and molecular mechanisms of heat stress tolerance will aid in tackling yield losses. In this context, a recombinant inbred line (RIL) population was developed and phenotyped for eight seasons at three locations for agronomic, phenological, and physiological traits under heat stress. A genetic map was constructed using genotyping-by-sequencing with 478 single-nucleotide polymorphism (SNP) loci spanning a map distance of 1,961.39 cM. Quantitative trait locus (QTL) analysis using phenotypic and genotypic data identified 45 major main-effect QTLs for 21 traits. Intriguingly, three QTL clusters (Cluster-1-Ah03, Cluster-2-Ah12, and Cluster-3-Ah20) harbor more than half of the major QTLs (30/45, 66.6%) for various heat tolerant traits, explaining 10.4%–38.6%, 10.6%–44.6%, and 10.1%–49.5% of phenotypic variance, respectively. Furthermore, important candidate genes encoding DHHC-type zinc finger family protein (arahy.J0Y6Y5), peptide transporter 1 (arahy.8ZMT0C), pentatricopeptide repeat-containing protein (arahy.4A4JE9), Ulp1 protease family (arahy.X568GS), Kelch repeat F-box protein (arahy.I7X4PC), FRIGIDA-like protein (arahy.0C3V8Z), and post-illumination chlorophyll fluorescence increase (arahy.92ZGJC) were the underlying three QTL clusters. The putative functions of these genes suggested their involvement in seed development, regulating plant architecture, yield, genesis and growth of plants, flowering time regulation, and photosynthesis. Our results could provide a platform for further fine mapping, gene discovery, and developing markers for genomics-assisted breeding to develop heat-tolerant groundnut varieties.
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spelling pubmed-102433732023-06-07 Genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut Sharma, Vinay Gangurde, Sunil S. Nayak, Spurthi N. Gowda, Anjan S. Sukanth, B.S. Mahadevaiah, Supriya S. Manohar, Surendra S. Choudhary, Rakeshkumar S. Anitha, T. Malavalli, Sachin S. Srikanth, S.N. Bajaj, Prasad Sharma, Shailendra Varshney, Rajeev K. Latha, Putta Janila, Pasupuleti Bhat, Ramesh S. Pandey, Manish K. Front Plant Sci Plant Science Groundnut productivity and quality have been impeded by rising temperatures in semi-arid environments. Hence, understanding the effects and molecular mechanisms of heat stress tolerance will aid in tackling yield losses. In this context, a recombinant inbred line (RIL) population was developed and phenotyped for eight seasons at three locations for agronomic, phenological, and physiological traits under heat stress. A genetic map was constructed using genotyping-by-sequencing with 478 single-nucleotide polymorphism (SNP) loci spanning a map distance of 1,961.39 cM. Quantitative trait locus (QTL) analysis using phenotypic and genotypic data identified 45 major main-effect QTLs for 21 traits. Intriguingly, three QTL clusters (Cluster-1-Ah03, Cluster-2-Ah12, and Cluster-3-Ah20) harbor more than half of the major QTLs (30/45, 66.6%) for various heat tolerant traits, explaining 10.4%–38.6%, 10.6%–44.6%, and 10.1%–49.5% of phenotypic variance, respectively. Furthermore, important candidate genes encoding DHHC-type zinc finger family protein (arahy.J0Y6Y5), peptide transporter 1 (arahy.8ZMT0C), pentatricopeptide repeat-containing protein (arahy.4A4JE9), Ulp1 protease family (arahy.X568GS), Kelch repeat F-box protein (arahy.I7X4PC), FRIGIDA-like protein (arahy.0C3V8Z), and post-illumination chlorophyll fluorescence increase (arahy.92ZGJC) were the underlying three QTL clusters. The putative functions of these genes suggested their involvement in seed development, regulating plant architecture, yield, genesis and growth of plants, flowering time regulation, and photosynthesis. Our results could provide a platform for further fine mapping, gene discovery, and developing markers for genomics-assisted breeding to develop heat-tolerant groundnut varieties. Frontiers Media S.A. 2023-05-23 /pmc/articles/PMC10243373/ /pubmed/37287715 http://dx.doi.org/10.3389/fpls.2023.1182867 Text en Copyright © 2023 Sharma, Gangurde, Nayak, Gowda, Sukanth, Mahadevaiah, Manohar, Choudhary, Anitha, Malavalli, Srikanth, Bajaj, Sharma, Varshney, Latha, Janila, Bhat and Pandey 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
Sharma, Vinay
Gangurde, Sunil S.
Nayak, Spurthi N.
Gowda, Anjan S.
Sukanth, B.S.
Mahadevaiah, Supriya S.
Manohar, Surendra S.
Choudhary, Rakeshkumar S.
Anitha, T.
Malavalli, Sachin S.
Srikanth, S.N.
Bajaj, Prasad
Sharma, Shailendra
Varshney, Rajeev K.
Latha, Putta
Janila, Pasupuleti
Bhat, Ramesh S.
Pandey, Manish K.
Genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut
title Genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut
title_full Genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut
title_fullStr Genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut
title_full_unstemmed Genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut
title_short Genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut
title_sort genetic mapping identified three hotspot genomic regions and candidate genes controlling heat tolerance-related traits in groundnut
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10243373/
https://www.ncbi.nlm.nih.gov/pubmed/37287715
http://dx.doi.org/10.3389/fpls.2023.1182867
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