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Impact of Intestinal Microbiota on Growth and Feed Efficiency in Pigs: A Review

Overview
Journal Microorganisms
Specialty Microbiology
Date 2020 Dec 2
PMID 33260665
Citations 59
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Abstract

This review summarises the evidence for a link between the porcine intestinal microbiota and growth and feed efficiency (FE), and suggests microbiota-targeted strategies to improve productivity. However, there are challenges in identifying reliable microbial predictors of host phenotype; environmental factors impact the microbe-host interplay, sequential differences along the intestine result in segment-specific FE- and growth-associated taxa/functionality, and it is often difficult to distinguish cause and effect. However, bacterial taxa involved in nutrient processing and energy harvest, and those with anti-inflammatory effects, are consistently linked with improved productivity. In particular, evidence is emerging for an association of and methanogens such as in the small and large intestines and in the large intestine with a leaner phenotype and/or improved FE. Bacterial carbohydrate and/or lipid metabolism pathways are also generally enriched in the large intestine of leaner pigs and/or those with better growth/FE. Possible microbial signalling routes linked to superior growth and FE include increased intestinal propionate production and reduced inflammatory response. In summary, the bacterial taxa and/or metabolic pathways identified here could be used as biomarkers for FE/growth in pigs, the taxa exploited as probiotics or the taxa/functionality manipulated via dietary/breeding strategies in order to improve productivity in pigs.

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References
1.
Vigors S, O Doherty J, Sweeney T . Colonic microbiome profiles for improved feed efficiency can be identified despite major effects of farm of origin and contemporary group in pigs. Animal. 2020; 14(12):2472-2480. DOI: 10.1017/S1751731120001500. View

2.
Barea R, Dubois S, Gilbert H, Sellier P, van Milgen J, Noblet J . Energy utilization in pigs selected for high and low residual feed intake. J Anim Sci. 2010; 88(6):2062-72. DOI: 10.2527/jas.2009-2395. View

3.
Million M, Angelakis E, Maraninchi M, Henry M, Giorgi R, Valero R . Correlation between body mass index and gut concentrations of Lactobacillus reuteri, Bifidobacterium animalis, Methanobrevibacter smithii and Escherichia coli. Int J Obes (Lond). 2013; 37(11):1460-6. PMC: 3826031. DOI: 10.1038/ijo.2013.20. View

4.
de Ridder L, Maes D, Dewulf J, Pasmans F, Boyen F, Haesebrouck F . Evaluation of three intervention strategies to reduce the transmission of Salmonella Typhimurium in pigs. Vet J. 2013; 197(3):613-8. DOI: 10.1016/j.tvjl.2013.03.026. View

5.
Jacobson A, Lam L, Rajendram M, Tamburini F, Honeycutt J, Pham T . A Gut Commensal-Produced Metabolite Mediates Colonization Resistance to Salmonella Infection. Cell Host Microbe. 2018; 24(2):296-307.e7. PMC: 6223613. DOI: 10.1016/j.chom.2018.07.002. View