Character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance

Heat stress is becoming a major constraint for maize production; therefore heat stress resilience has emerged as an important aspect in maize hybrids targeted for post rainy spring season. Selection of genotypes based on high grain yield under heat stress condition is often misleading and the identi...

Full description

Bibliographic Details
Main Authors: Swamy, N., Kuchanur, Prakash H., Patil, Ayyanagouda, Zaidi, Pervez H., Vinayan, M. T., Arunkumar, B., Sowmya, H. C., Dhanoji, M. M.
Format: Journal Article
Language:Inglés
Published: Sciencedomain International 2023
Subjects:
Online Access:https://hdl.handle.net/10568/138044
_version_ 1855529821489070080
author Swamy, N.
Kuchanur, Prakash H.
Patil, Ayyanagouda
Zaidi, Pervez H.
Vinayan, M. T.
Arunkumar, B.
Sowmya, H. C.
Dhanoji, M. M.
author_browse Arunkumar, B.
Dhanoji, M. M.
Kuchanur, Prakash H.
Patil, Ayyanagouda
Sowmya, H. C.
Swamy, N.
Vinayan, M. T.
Zaidi, Pervez H.
author_facet Swamy, N.
Kuchanur, Prakash H.
Patil, Ayyanagouda
Zaidi, Pervez H.
Vinayan, M. T.
Arunkumar, B.
Sowmya, H. C.
Dhanoji, M. M.
author_sort Swamy, N.
collection Repository of Agricultural Research Outputs (CGSpace)
description Heat stress is becoming a major constraint for maize production; therefore heat stress resilience has emerged as an important aspect in maize hybrids targeted for post rainy spring season. Selection of genotypes based on high grain yield under heat stress condition is often misleading and the identification of secondary traits also associated with grain yield may help in development of heat tolerant cultivars. Hence, the present research work to study the association of traits was conducted during summer and kharif 2018 and rabi 2018-19 at Bheemarayanagudi and Raichur using 111 testcross progenies of doubled haploids derived from C1, C2 and C3 cycles of multi-parental synthetic population 1 and 2 improved through rapid cycle genomic selection for heat stress tolerance. The phenotypic correlation analysis under heat stress and optimal conditions, number of kernels per cob and cob girth exhibited the strong positive association with grain yield per plant. Further, under early spring condition number of kernels per cob, cob length, cob girth and 100 grain weight recorded the strong positive association with grain yield per plant. However, when considering across heat stress, early spring and optimal conditions, the grain yield per plant showed positive and significant strong to moderate association with the traits viz., number of kernels per cob, cob length and cob girth under all the seasons. In addition, days to 50% silking showed significant negative correlation with grain yield per plant under heat stress and optimal condition. Hence, the simultaneous selection criteria for the genotypes that exerts early silking, higher number of kernels per cob, higher cob girth and lengthy cob should be the priority of breeders to achieve higher grain yields in maize under heat stress condition as well as optimal conditions.
format Journal Article
id CGSpace138044
institution CGIAR Consortium
language Inglés
publishDate 2023
publishDateRange 2023
publishDateSort 2023
publisher Sciencedomain International
publisherStr Sciencedomain International
record_format dspace
spelling CGSpace1380442024-11-07T09:25:27Z Character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance Swamy, N. Kuchanur, Prakash H. Patil, Ayyanagouda Zaidi, Pervez H. Vinayan, M. T. Arunkumar, B. Sowmya, H. C. Dhanoji, M. M. maize heat stress marker-assisted selection doubled haploids phenotypic variation climate change Heat stress is becoming a major constraint for maize production; therefore heat stress resilience has emerged as an important aspect in maize hybrids targeted for post rainy spring season. Selection of genotypes based on high grain yield under heat stress condition is often misleading and the identification of secondary traits also associated with grain yield may help in development of heat tolerant cultivars. Hence, the present research work to study the association of traits was conducted during summer and kharif 2018 and rabi 2018-19 at Bheemarayanagudi and Raichur using 111 testcross progenies of doubled haploids derived from C1, C2 and C3 cycles of multi-parental synthetic population 1 and 2 improved through rapid cycle genomic selection for heat stress tolerance. The phenotypic correlation analysis under heat stress and optimal conditions, number of kernels per cob and cob girth exhibited the strong positive association with grain yield per plant. Further, under early spring condition number of kernels per cob, cob length, cob girth and 100 grain weight recorded the strong positive association with grain yield per plant. However, when considering across heat stress, early spring and optimal conditions, the grain yield per plant showed positive and significant strong to moderate association with the traits viz., number of kernels per cob, cob length and cob girth under all the seasons. In addition, days to 50% silking showed significant negative correlation with grain yield per plant under heat stress and optimal condition. Hence, the simultaneous selection criteria for the genotypes that exerts early silking, higher number of kernels per cob, higher cob girth and lengthy cob should be the priority of breeders to achieve higher grain yields in maize under heat stress condition as well as optimal conditions. 2023 2024-01-18T16:49:03Z 2024-01-18T16:49:03Z Journal Article https://hdl.handle.net/10568/138044 en Open Access application/pdf Sciencedomain International Swamy, N., Kuchanur, P. H., Patil, A., Zaidi, P. H., Vinayan, M. T., Arunkumar, B., Sowmya, H. C., & Dhanoji, M. M. (2023). Character Association Study in Maize Hybrids Developed through Integration of Rapid Cycle Genomic Selection and Doubled Haploid Technology for Heat Stress Tolerance. International Journal of Environment and Climate Change, 13(11), 1678–1693. https://doi.org/10.9734/ijecc/2023/v13i113323
spellingShingle maize
heat stress
marker-assisted selection
doubled haploids
phenotypic variation
climate change
Swamy, N.
Kuchanur, Prakash H.
Patil, Ayyanagouda
Zaidi, Pervez H.
Vinayan, M. T.
Arunkumar, B.
Sowmya, H. C.
Dhanoji, M. M.
Character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance
title Character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance
title_full Character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance
title_fullStr Character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance
title_full_unstemmed Character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance
title_short Character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance
title_sort character association study in maize hybrids developed through integration of rapid cycle genomic selection and doubled haploid technology for heat stress tolerance
topic maize
heat stress
marker-assisted selection
doubled haploids
phenotypic variation
climate change
url https://hdl.handle.net/10568/138044
work_keys_str_mv AT swamyn characterassociationstudyinmaizehybridsdevelopedthroughintegrationofrapidcyclegenomicselectionanddoubledhaploidtechnologyforheatstresstolerance
AT kuchanurprakashh characterassociationstudyinmaizehybridsdevelopedthroughintegrationofrapidcyclegenomicselectionanddoubledhaploidtechnologyforheatstresstolerance
AT patilayyanagouda characterassociationstudyinmaizehybridsdevelopedthroughintegrationofrapidcyclegenomicselectionanddoubledhaploidtechnologyforheatstresstolerance
AT zaidipervezh characterassociationstudyinmaizehybridsdevelopedthroughintegrationofrapidcyclegenomicselectionanddoubledhaploidtechnologyforheatstresstolerance
AT vinayanmt characterassociationstudyinmaizehybridsdevelopedthroughintegrationofrapidcyclegenomicselectionanddoubledhaploidtechnologyforheatstresstolerance
AT arunkumarb characterassociationstudyinmaizehybridsdevelopedthroughintegrationofrapidcyclegenomicselectionanddoubledhaploidtechnologyforheatstresstolerance
AT sowmyahc characterassociationstudyinmaizehybridsdevelopedthroughintegrationofrapidcyclegenomicselectionanddoubledhaploidtechnologyforheatstresstolerance
AT dhanojimm characterassociationstudyinmaizehybridsdevelopedthroughintegrationofrapidcyclegenomicselectionanddoubledhaploidtechnologyforheatstresstolerance