4.7 Article

Economic and environmental assessments of combined genetics and nutrition optimization strategies to improve the efficiency of sustainable pork production

Journal

JOURNAL OF ANIMAL SCIENCE
Volume 99, Issue 3, Pages -

Publisher

OXFORD UNIV PRESS INC
DOI: 10.1093/jas/skab051

Keywords

bio-economic model; environmental assessment; feed efficiency; genetic; pig; residual feed intake

Funding

  1. European Research Area on Sustainable Animal (ERA-NET SUSAN) program via the French National Research Agency [ANR-16-SUSN-0005]
  2. Agence Nationale de la Recherche (ANR) [ANR-16-SUSN-0005] Funding Source: Agence Nationale de la Recherche (ANR)

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By selecting for pig feed efficiency and optimizing diets, sustainable farm feed efficiency can be improved, leading to increased profitability and reduced environmental impact in pig production systems. The study highlights the importance of feed efficiency in improving sustainability and reducing environmental footprints in pig production.
We evaluated the economic and environmental impacts of strategies that incorporated selection for pig feed efficiency and dietary optimization based on a single or multiple objectives tailored to meet the population nutritional requirements, with the goal to optimize sustainable farm feed efficiency. The economic and environmental features of the strategy were evaluated using life cycle assessment (LCA) and bio-economic models. An individual trait-based LCA model was applied to evaluate global warming potential, terrestrial acidification potential, freshwater eutrophication potential (EP), and land occupation of the combined genetics and nutrition optimization to produce 1 kg of live pig weighing 120 kg at the farm gate. A parametric individual trait-based bio-economic model was developed and applied to determine the cost breakdown, revenue, and profit to be gained from a 120-kg live pig at the farm gate. Data from two genetic lines with contrasted levels of feed efficiency were used to apply the combined genetics and nutrition optimization: accounting for the average nutritional requirements for each line, the individual pig responses to diets formulated for least cost, least environmental impacts, or minimum combination of costs and environmental impacts objectives were predicted with INRAPorc. Significant differences in the environmental impacts (P < 0.0001) and profit (P < 0.05) between lines predicted with the same reference diet showed that selection for feed efficiency (residual feed intake) in pigs improves pig production sustainability. When pig responses were simulated with their line-optimized diets, except for EP, all the line environmental impacts were lower (P < 0.05) than with the reference diet. The high correlations of feed conversion ratio with the environmental impacts (> 0.82) and the profit (< -0.88) in both lines underlined the importance of feed efficiency as a lever for the sustainability of pig production systems. Implementing combined genetics and nutrition optimization, the inherent profit and environmental differences between the genetic lines were predicted to be reduced from 23.4% with the reference diet to 7.6% with the diet optimized jointly for economic and environmental objectives (joint diet). Consequently, for increased pig sustainability, diet optimization for sustainability objectives should be applied to cover the specific nutritional requirements arising in the herd from the pigs genetic level.

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