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Sorghum Pan-Genome Explores the Functional Utility for Genomic-Assisted Breeding to Accelerate the Genetic Gain

Sorghum (Sorghum bicolor L.) is a staple food crops in the arid and rainfed production ecologies. Sorghum plays a critical role in resilient farming and is projected as a smart crop to overcome the food and nutritional insecurity in the developing world. The development and characterisation of the s...

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Autores principales: Ruperao, Pradeep, Thirunavukkarasu, Nepolean, Gandham, Prasad, Selvanayagam, Sivasubramani, Govindaraj, Mahalingam, Nebie, Baloua, Manyasa, Eric, Gupta, Rajeev, Das, Roma Rani, Odeny, Damaris A., Gandhi, Harish, Edwards, David, Deshpande, Santosh P., Rathore, Abhishek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8204017/
https://www.ncbi.nlm.nih.gov/pubmed/34140962
http://dx.doi.org/10.3389/fpls.2021.666342
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author Ruperao, Pradeep
Thirunavukkarasu, Nepolean
Gandham, Prasad
Selvanayagam, Sivasubramani
Govindaraj, Mahalingam
Nebie, Baloua
Manyasa, Eric
Gupta, Rajeev
Das, Roma Rani
Odeny, Damaris A.
Gandhi, Harish
Edwards, David
Deshpande, Santosh P.
Rathore, Abhishek
author_facet Ruperao, Pradeep
Thirunavukkarasu, Nepolean
Gandham, Prasad
Selvanayagam, Sivasubramani
Govindaraj, Mahalingam
Nebie, Baloua
Manyasa, Eric
Gupta, Rajeev
Das, Roma Rani
Odeny, Damaris A.
Gandhi, Harish
Edwards, David
Deshpande, Santosh P.
Rathore, Abhishek
author_sort Ruperao, Pradeep
collection PubMed
description Sorghum (Sorghum bicolor L.) is a staple food crops in the arid and rainfed production ecologies. Sorghum plays a critical role in resilient farming and is projected as a smart crop to overcome the food and nutritional insecurity in the developing world. The development and characterisation of the sorghum pan-genome will provide insight into genome diversity and functionality, supporting sorghum improvement. We built a sorghum pan-genome using reference genomes as well as 354 genetically diverse sorghum accessions belonging to different races. We explored the structural and functional characteristics of the pan-genome and explain its utility in supporting genetic gain. The newly-developed pan-genome has a total of 35,719 genes, a core genome of 16,821 genes and an average of 32,795 genes in each cultivar. The variable genes are enriched with environment responsive genes and classify the sorghum accessions according to their race. We show that 53% of genes display presence-absence variation, and some of these variable genes are predicted to be functionally associated with drought adaptation traits. Using more than two million SNPs from the pan-genome, association analysis identified 398 SNPs significantly associated with important agronomic traits, of which, 92 were in genes. Drought gene expression analysis identified 1,788 genes that are functionally linked to different conditions, of which 79 were absent from the reference genome assembly. This study provides comprehensive genomic diversity resources in sorghum which can be used in genome assisted crop improvement.
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spelling pubmed-82040172021-06-16 Sorghum Pan-Genome Explores the Functional Utility for Genomic-Assisted Breeding to Accelerate the Genetic Gain Ruperao, Pradeep Thirunavukkarasu, Nepolean Gandham, Prasad Selvanayagam, Sivasubramani Govindaraj, Mahalingam Nebie, Baloua Manyasa, Eric Gupta, Rajeev Das, Roma Rani Odeny, Damaris A. Gandhi, Harish Edwards, David Deshpande, Santosh P. Rathore, Abhishek Front Plant Sci Plant Science Sorghum (Sorghum bicolor L.) is a staple food crops in the arid and rainfed production ecologies. Sorghum plays a critical role in resilient farming and is projected as a smart crop to overcome the food and nutritional insecurity in the developing world. The development and characterisation of the sorghum pan-genome will provide insight into genome diversity and functionality, supporting sorghum improvement. We built a sorghum pan-genome using reference genomes as well as 354 genetically diverse sorghum accessions belonging to different races. We explored the structural and functional characteristics of the pan-genome and explain its utility in supporting genetic gain. The newly-developed pan-genome has a total of 35,719 genes, a core genome of 16,821 genes and an average of 32,795 genes in each cultivar. The variable genes are enriched with environment responsive genes and classify the sorghum accessions according to their race. We show that 53% of genes display presence-absence variation, and some of these variable genes are predicted to be functionally associated with drought adaptation traits. Using more than two million SNPs from the pan-genome, association analysis identified 398 SNPs significantly associated with important agronomic traits, of which, 92 were in genes. Drought gene expression analysis identified 1,788 genes that are functionally linked to different conditions, of which 79 were absent from the reference genome assembly. This study provides comprehensive genomic diversity resources in sorghum which can be used in genome assisted crop improvement. Frontiers Media S.A. 2021-06-01 /pmc/articles/PMC8204017/ /pubmed/34140962 http://dx.doi.org/10.3389/fpls.2021.666342 Text en Copyright © 2021 Ruperao, Thirunavukkarasu, Gandham, Selvanayagam, Govindaraj, Nebie, Manyasa, Gupta, Das, Odeny, Gandhi, Edwards, Deshpande and Rathore. 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
Ruperao, Pradeep
Thirunavukkarasu, Nepolean
Gandham, Prasad
Selvanayagam, Sivasubramani
Govindaraj, Mahalingam
Nebie, Baloua
Manyasa, Eric
Gupta, Rajeev
Das, Roma Rani
Odeny, Damaris A.
Gandhi, Harish
Edwards, David
Deshpande, Santosh P.
Rathore, Abhishek
Sorghum Pan-Genome Explores the Functional Utility for Genomic-Assisted Breeding to Accelerate the Genetic Gain
title Sorghum Pan-Genome Explores the Functional Utility for Genomic-Assisted Breeding to Accelerate the Genetic Gain
title_full Sorghum Pan-Genome Explores the Functional Utility for Genomic-Assisted Breeding to Accelerate the Genetic Gain
title_fullStr Sorghum Pan-Genome Explores the Functional Utility for Genomic-Assisted Breeding to Accelerate the Genetic Gain
title_full_unstemmed Sorghum Pan-Genome Explores the Functional Utility for Genomic-Assisted Breeding to Accelerate the Genetic Gain
title_short Sorghum Pan-Genome Explores the Functional Utility for Genomic-Assisted Breeding to Accelerate the Genetic Gain
title_sort sorghum pan-genome explores the functional utility for genomic-assisted breeding to accelerate the genetic gain
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8204017/
https://www.ncbi.nlm.nih.gov/pubmed/34140962
http://dx.doi.org/10.3389/fpls.2021.666342
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