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GIS-based G × E modeling of maize hybrids through enviromic markers engineering. | LitMetric

GIS-based G × E modeling of maize hybrids through enviromic markers engineering.

New Phytol

TheCROP, A Precision Breeding Project, Av. Esperança, n° 1533, FUNAPE, Samambaia Technological Park, Samambaia Campus - UFG, Goiânia, GO, 74690-612, Brazil.

Published: January 2025

AI Article Synopsis

  • Precision breeding utilizes innovative geotechnologies through enviromics to tailor crop varieties, potentially enhancing crop yield and genetic selection in specific environments.* -
  • In Brazil's southern states, data from 183 field trials on 164 maize genotypes were analyzed alongside 1342 environmental factors, revealing significant influences like soil and temperature on crop performance.* -
  • A random regression model that incorporates these environmental markers shows improved predictive ability, aiding in the development of higher-yielding hybrid crops suited to particular regions.*

Article Abstract

Through enviromics, precision breeding leverages innovative geotechnologies to customize crop varieties to specific environments, potentially improving both crop yield and genetic selection gains. In Brazil's four southernmost states, data from 183 distinct geographic field trials (also accounting for 2017-2021) covered information on 164 genotypes: 79 phenotyped maize hybrid genotypes for grain yield and their 85 nonphenotyped parents. Additionally, 1342 envirotypic covariates from weather, soil, sensor-based, and satellite sources were collected to engineer 10 K synthetic enviromic markers via machine learning. Soil, radiation light, and surface temperature variations remarkably affect differential genotype yield, hinting at ecophysiological adjustments including evapotranspiration and photosynthesis. The enviromic ensemble-based random regression model showcases superior predictive performance and efficiency compared to the baseline and kernel models, matching the best genotypes to specific geographic coordinates. Clustering analysis has identified regions that minimize genotype-environment (G × E) interactions. These findings underscore the potential of enviromics in crafting specific parental combinations to breed new, higher-yielding hybrid crops. The adequate use of envirotypic information can enhance the precision and efficiency of maize breeding by providing important inputs about the environmental factors that affect the average crop performance. Generating enviromic markers associated with grain yield can enable a better selection of hybrids for specific environments.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11617650PMC
http://dx.doi.org/10.1111/nph.19951DOI Listing

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