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Details

Autor(en) / Beteiligte
Titel
Genomic prediction of maize yield across European environmental conditions
Ist Teil von
  • Nature genetics, 2019-06, Vol.51 (6), p.952-956
Ort / Verlag
United States: Nature Publishing Group
Erscheinungsjahr
2019
Link zum Volltext
Beschreibungen/Notizen
  • The development of germplasm adapted to changing climate is required to ensure food security . Genomic prediction is a powerful tool to evaluate many genotypes but performs poorly in contrasting environmental scenarios (genotype × environment interaction), in spite of promising results for flowering time . New avenues are opened by the development of sensor networks for environmental characterization in thousands of fields . We present a new strategy for germplasm evaluation under genotype × environment interaction. Yield was dissected in grain weight and number and genotype × environment interaction in these components was modeled as genotypic sensitivity to environmental drivers. Environments were characterized using genotype-specific indices computed from sensor data in each field and the progression of phenology calibrated for each genotype on a phenotyping platform. A whole-genome regression approach for the genotypic sensitivities led to accurate prediction of yield under genotype × environment interaction in a wide range of environmental scenarios, outperforming a benchmark approach.

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