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Published on: September 7, 2015
Estimation of genetic parameters for milk mid-infrared-predicted methane production in Holstein dairy cattle
Saeed Shadpour1, Allison Fleming2, Christine F Baes1
1Centre for Genetic Improvement of Livestock, Department of Animal Biosciences, University of Guelph, Guelph, ON, N1G 2W1, Canada.
Abstract:
Livestock methane emissions contribute to 18% of global greenhouse gas emissions. Integrating methane production into breeding goals has the potential to mitigate methane emissions and contribute to more sustainable livestock systems. To achieve this through genetic selection, large datasets of phenotypic records are required, making the use of direct measurement of methane emissions limited on a broad scale. Consequently, alternative approaches, such as using predicted methane emissions derived from more easily measured traits, have been proposed. The objective of this study was to estimate the genetic parameters of weekly average milk mid-infrared-predicted methane production (PCH4) and its genetic correlation with milk yield (MY), fat yield (FY), and protein yield (PY) in Canadian Holstein dairy cows. We analyzed a total of 37,202 PCH4 records and corresponding test-day records for MY, FY, and PY collected between 119 and 179 DIM from 18,505 first-lactation Canadian Holstein cows distributed over 100 herds. Several statistical models were evaluated to estimate the genetic parameters of PCH4. These included a single-trait model and 3 separate 2-trait random regression models that employed fifth-degree Legendre polynomials on weeks of lactation. The estimated heritability of PCH4 ranged from 0.37 (SE = 0.06) to 0.45 (SE = 0.02), indicating a moderate genetic influence on predicted methane production. The genetic correlations between PCH4 and test-day MY, FY, and PY ranged from -0.23 (SE = 0.06) to -0.13 (SE = 0.06), 0.3 (SE = 0.06) to 0.48 (SE = 0.08), -0.17 (SE = 0.07) to -0.09 (SE = 0.06), respectively, suggesting low to moderate associations between PCH4 and the production traits. These results suggest that PCH4 is moderately heritable and can be used for genetic selection to mitigate methane emissions in dairy cows. However, the positive unfavorable genetic correlation with FY should be considered when selecting animals for lower PCH4 to avoid potential negative impacts on fat yield. These findings contribute to the ongoing efforts to improve the environmental sustainability of the livestock industry while maintaining productivity.

