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An artificial intelligence approach of feature engineering and ensemble methods depicts the rumen microbiome contribution to feed efficiency in dairy cows

Authors :
Hugo F. Monteiro
Caio C. Figueiredo
Bruna Mion
José Eduardo P. Santos
Rafael S. Bisinotto
Francisco Peñagaricano
Eduardo S. Ribeiro
Mariana N. Marinho
Roney Zimpel
Ana Carolina da Silva
Adeoye Oyebade
Richard R. Lobo
Wilson M. Coelho Jr
Phillip M. G. Peixoto
Maria B. Ugarte Marin
Sebastian G. Umaña-Sedó
Tomás D. G. Rojas
Modesto Elvir-Hernandez
Flávio S. Schenkel
Bart C. Weimer
C. Titus Brown
Ermias Kebreab
Fábio S. Lima
Source :
Animal Microbiome, Vol 6, Iss 1, Pp 1-20 (2024)
Publication Year :
2024
Publisher :
BMC, 2024.

Abstract

Abstract Genetic selection has remarkably helped U.S. dairy farms to decrease their carbon footprint by more than doubling milk production per cow over time. Despite the environmental and economic benefits of improved feed and milk production efficiency, there is a critical need to explore phenotypical variance for feed utilization to advance the long-term sustainability of dairy farms. Feed is a major expense in dairy operations, and their enteric fermentation is a major source of greenhouse gases in agriculture. The challenges to expanding the phenotypic database, especially for feed efficiency predictions, and the lack of understanding of its drivers limit its utilization. Herein, we leveraged an artificial intelligence approach with feature engineering and ensemble methods to explore the predictive power of the rumen microbiome for feed and milk production efficiency traits, as rumen microbes play a central role in physiological responses in dairy cows. The novel ensemble method allowed to further identify key microbes linked to the efficiency measures. We used a population of 454 genotyped Holstein cows in the U.S. and Canada with individually measured feed and milk production efficiency phenotypes. The study underscored that the rumen microbiome is a major driver of residual feed intake (RFI), the most robust feed efficiency measure evaluated in the study, accounting for 36% of its variation. Further analyses showed that several alpha-diversity metrics were lower in more feed-efficient cows. For RFI, [Ruminococcus] gauvreauii group was the only genus positively associated with an improved feed efficiency status while seven other taxa were associated with inefficiency. The study also highlights that the rumen microbiome is pivotal for the unexplained variance in milk fat and protein production efficiency. Estimation of the carbon footprint of these cows shows that selection for better RFI could reduce up to 5 kg of diet consumed per cow daily, potentially reducing up to 37.5% of CH4. These findings shed light that the integration of artificial intelligence approaches, microbiology, and ruminant nutrition can be a path to further advance our understanding of the rumen microbiome on nutrient requirements and lactation performance of dairy cows to support the long-term sustainability of the dairy community.

Details

Language :
English
ISSN :
25244671
Volume :
6
Issue :
1
Database :
Directory of Open Access Journals
Journal :
Animal Microbiome
Publication Type :
Academic Journal
Accession number :
edsdoj.25c432ab3d174d5082b381934a858e57
Document Type :
article
Full Text :
https://doi.org/10.1186/s42523-024-00289-5