Genome-Enabled Prediction Models for Yield Related Traits in Chickpea
ISI journal
Impact factor: 3.678 (Year: 2016)
Author(s)
Citation
Manish Roorkiwal, Abhishek Rathore, Roma R. Das, Muneendra K. Singh, Ankit Jain, Srinivasan Samineni, Pooran Gaur, Bharadwaj Chellapilla, Shailesh Tripathi, Yongle Li, John Hickey, Aaron Lorenz, Tim Sutton, Jose Crossa, Jean-Luc Jannink, Rajeev Varshney. (22/11/2016). Genome-Enabled Prediction Models for Yield Related Traits in Chickpea. Frontiers in Plant Science, 7: 1666.
Abstract
Genomic selection (GS) unlike marker-assisted backcrossing (MABC) predicts breeding
values of lines using genome-wide marker profiling and allows selection of lines prior
to field-phenotyping, thereby shortening the breeding cycle. A collection of 320 elite
breeding lines was selected and phenotyped extensively for yield and yield related
traits at two different locations (Delhi and Patancheru, India) during the crop seasons
2011–12 and 2012–13 under rainfed and irrigated conditions. In parallel, these lines
were also genotyped using DArTseq platform to generate genotyping data for 3000
polymorphic markers. Phenotyping and genotyping data were used with six statistical
GS models to estimate the prediction accuracies. GS models were tested for four yield
related traits viz. seed yield, 100 seed weight, days to 50% flowering and days to
maturity. Prediction accuracy for the models tested varied from 0.138 (seed yield) to
0.912 (100 seed weight), whereas performance of models did not show any significant
difference for estimating prediction accuracy within traits. Kinship matrix calculated using
genotyping data reaffirmed existence of two different groups within selected lines. There
was not much effect of population structure on prediction accuracy. In brief, present
study establishes the necessary resources for deployment of GS in chickpea breeding.
DSpace URI
https://hdl.handle.net/20.500.11766/6744Other URI
http://oar.icrisat.org/id/eprint/9797Collections
- Agricultural Research Knowledge [12055]
Author(s) ORCID(s)
Roorkiwal, Manishhttps://orcid.org/0000-0001-6595-281X
Rathore, Abhishekhttps://orcid.org/0000-0001-6887-4095
Samineni, Srinivasanhttps://orcid.org/0000-0001-9350-8847
Jannink, Jean-Luchttps://orcid.org/0000-0003-4849-628X
AGROVOC Keywords
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