Cargando…

Improved Genetic Map Identified Major QTLs for Drought Tolerance- and Iron Deficiency Tolerance-Related Traits in Groundnut

A deep understanding of the genetic control of drought tolerance and iron deficiency tolerance is essential to hasten the process of developing improved varieties with higher tolerance through genomics-assisted breeding. In this context, an improved genetic map with 1205 loci was developed spanning...

Descripción completa

Detalles Bibliográficos
Autores principales: Pandey, Manish K., Gangurde, Sunil S., Sharma, Vinay, Pattanashetti, Santosh K., Naidu, Gopalakrishna K., Faye, Issa, Hamidou, Falalou, Desmae, Haile, Kane, Ndjido Ardo, Yuan, Mei, Vadez, Vincent, Nigam, Shyam N., Varshney, Rajeev K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7824586/
https://www.ncbi.nlm.nih.gov/pubmed/33396649
http://dx.doi.org/10.3390/genes12010037
_version_ 1783640114070552576
author Pandey, Manish K.
Gangurde, Sunil S.
Sharma, Vinay
Pattanashetti, Santosh K.
Naidu, Gopalakrishna K.
Faye, Issa
Hamidou, Falalou
Desmae, Haile
Kane, Ndjido Ardo
Yuan, Mei
Vadez, Vincent
Nigam, Shyam N.
Varshney, Rajeev K.
author_facet Pandey, Manish K.
Gangurde, Sunil S.
Sharma, Vinay
Pattanashetti, Santosh K.
Naidu, Gopalakrishna K.
Faye, Issa
Hamidou, Falalou
Desmae, Haile
Kane, Ndjido Ardo
Yuan, Mei
Vadez, Vincent
Nigam, Shyam N.
Varshney, Rajeev K.
author_sort Pandey, Manish K.
collection PubMed
description A deep understanding of the genetic control of drought tolerance and iron deficiency tolerance is essential to hasten the process of developing improved varieties with higher tolerance through genomics-assisted breeding. In this context, an improved genetic map with 1205 loci was developed spanning 2598.3 cM with an average 2.2 cM distance between loci in the recombinant inbred line (TAG 24 × ICGV 86031) population using high-density 58K single nucleotide polymorphism (SNP) “Axiom_Arachis” array. Quantitative trait locus (QTL) analysis was performed using extensive phenotyping data generated for 20 drought tolerance- and two iron deficiency tolerance-related traits from eight seasons (2004–2015) at two locations in India, one in Niger, and one in Senegal. The genome-wide QTL discovery analysis identified 19 major main-effect QTLs with 10.0–33.9% phenotypic variation explained (PVE) for drought tolerance- and iron deficiency tolerance- related traits. Major main-effect QTLs were detected for haulm weight (20.1% PVE), SCMR (soil plant analytical development (SPAD) chlorophyll meter reading, 22.4% PVE), and visual chlorosis rate (33.9% PVE). Several important candidate genes encoding glycosyl hydrolases; malate dehydrogenases; microtubule-associated proteins; and transcription factors such as MADS-box, basic helix-loop-helix (bHLH), NAM, ATAF, and CUC (NAC), and myeloblastosis (MYB) were identified underlying these QTL regions. The putative function of these genes indicated their possible involvement in plant growth, development of seed and pod, and photosynthesis under drought or iron deficiency conditions in groundnut. These genomic regions and candidate genes, after validation, may be useful to develop molecular markers for deploying genomics-assisted breeding for enhancing groundnut yield under drought stress and iron-deficient soil conditions.
format Online
Article
Text
id pubmed-7824586
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-78245862021-01-24 Improved Genetic Map Identified Major QTLs for Drought Tolerance- and Iron Deficiency Tolerance-Related Traits in Groundnut Pandey, Manish K. Gangurde, Sunil S. Sharma, Vinay Pattanashetti, Santosh K. Naidu, Gopalakrishna K. Faye, Issa Hamidou, Falalou Desmae, Haile Kane, Ndjido Ardo Yuan, Mei Vadez, Vincent Nigam, Shyam N. Varshney, Rajeev K. Genes (Basel) Article A deep understanding of the genetic control of drought tolerance and iron deficiency tolerance is essential to hasten the process of developing improved varieties with higher tolerance through genomics-assisted breeding. In this context, an improved genetic map with 1205 loci was developed spanning 2598.3 cM with an average 2.2 cM distance between loci in the recombinant inbred line (TAG 24 × ICGV 86031) population using high-density 58K single nucleotide polymorphism (SNP) “Axiom_Arachis” array. Quantitative trait locus (QTL) analysis was performed using extensive phenotyping data generated for 20 drought tolerance- and two iron deficiency tolerance-related traits from eight seasons (2004–2015) at two locations in India, one in Niger, and one in Senegal. The genome-wide QTL discovery analysis identified 19 major main-effect QTLs with 10.0–33.9% phenotypic variation explained (PVE) for drought tolerance- and iron deficiency tolerance- related traits. Major main-effect QTLs were detected for haulm weight (20.1% PVE), SCMR (soil plant analytical development (SPAD) chlorophyll meter reading, 22.4% PVE), and visual chlorosis rate (33.9% PVE). Several important candidate genes encoding glycosyl hydrolases; malate dehydrogenases; microtubule-associated proteins; and transcription factors such as MADS-box, basic helix-loop-helix (bHLH), NAM, ATAF, and CUC (NAC), and myeloblastosis (MYB) were identified underlying these QTL regions. The putative function of these genes indicated their possible involvement in plant growth, development of seed and pod, and photosynthesis under drought or iron deficiency conditions in groundnut. These genomic regions and candidate genes, after validation, may be useful to develop molecular markers for deploying genomics-assisted breeding for enhancing groundnut yield under drought stress and iron-deficient soil conditions. MDPI 2020-12-30 /pmc/articles/PMC7824586/ /pubmed/33396649 http://dx.doi.org/10.3390/genes12010037 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Pandey, Manish K.
Gangurde, Sunil S.
Sharma, Vinay
Pattanashetti, Santosh K.
Naidu, Gopalakrishna K.
Faye, Issa
Hamidou, Falalou
Desmae, Haile
Kane, Ndjido Ardo
Yuan, Mei
Vadez, Vincent
Nigam, Shyam N.
Varshney, Rajeev K.
Improved Genetic Map Identified Major QTLs for Drought Tolerance- and Iron Deficiency Tolerance-Related Traits in Groundnut
title Improved Genetic Map Identified Major QTLs for Drought Tolerance- and Iron Deficiency Tolerance-Related Traits in Groundnut
title_full Improved Genetic Map Identified Major QTLs for Drought Tolerance- and Iron Deficiency Tolerance-Related Traits in Groundnut
title_fullStr Improved Genetic Map Identified Major QTLs for Drought Tolerance- and Iron Deficiency Tolerance-Related Traits in Groundnut
title_full_unstemmed Improved Genetic Map Identified Major QTLs for Drought Tolerance- and Iron Deficiency Tolerance-Related Traits in Groundnut
title_short Improved Genetic Map Identified Major QTLs for Drought Tolerance- and Iron Deficiency Tolerance-Related Traits in Groundnut
title_sort improved genetic map identified major qtls for drought tolerance- and iron deficiency tolerance-related traits in groundnut
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7824586/
https://www.ncbi.nlm.nih.gov/pubmed/33396649
http://dx.doi.org/10.3390/genes12010037
work_keys_str_mv AT pandeymanishk improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT gangurdesunils improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT sharmavinay improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT pattanashettisantoshk improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT naidugopalakrishnak improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT fayeissa improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT hamidoufalalou improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT desmaehaile improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT kanendjidoardo improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT yuanmei improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT vadezvincent improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT nigamshyamn improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut
AT varshneyrajeevk improvedgeneticmapidentifiedmajorqtlsfordroughttoleranceandirondeficiencytolerancerelatedtraitsingroundnut