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Genomic prediction of blood biomarkers of metabolic disorders in Holstein cattle using parametric and nonparametric models.

Lucio F M MotaDiana GiannuzziSara PegoloEnrico SturaroDaniel GianolaRiccardo NegriniErminio TrevisiPaolo Ajmone MarsanAlessio Cecchinato
Published in: Genetics, selection, evolution : GSE (2024)
Our results indicate that the Stack approach was more accurate in predicting metabolic disturbances than GBLUP, BayesB, ENET, and GBM and seemed to be competitive for predicting complex phenotypes with various degrees of mode of inheritance, i.e. additive and non-additive effects. Selecting markers based on GBM improved accuracy of GBLUP.
Keyphrases
  • mitochondrial dna
  • copy number
  • high resolution
  • heat stress
  • genome wide