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R John Wallace

Showing results (41-50 of 59) with videos related to

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The Biochemical Journal|April 16, 2003
Characterization of XYN10B, a modular xylanase from the ruminal protozoan Polyplastron multivesiculatum, with a family 22 carbohydrate-binding module that binds to celluloseEstelle Devillard, Christel Bera-Maillet, Harry J Flint, et al.
BMC Genomics|October 24, 2015
The rumen microbial metagenome associated with high methane production in cattleR John Wallace, John A Rooke, Nest McKain, et al.
Microbiome|December 13, 2017
The rumen microbiome as a reservoir of antimicrobial resistance and pathogenicity genes is directly affected by diet in beef cattleMarc D Auffret, Richard J Dewhurst, Carol-Anne Duthie, et al.
Microbiome|November 20, 2019
Correction to: The rumen microbiome as a reservoir of antimicrobial resistance and pathogenicity genes is directly affected by diet in beef cattleMarc D Auffret, Richard J Dewhurst, Carol-Anne Duthie, et al.
Plos One|March 18, 2016
Oral Samples as Non-Invasive Proxies for Assessing the Composition of the Rumen Microbial CommunityIlma Tapio, Kevin J Shingfield, Nest McKain, et al.
The British Journal of Nutrition|May 1, 2014
Hydrogen and methane emissions from beef cattle and their rumen microbial community vary with diet, time after feeding and genotypeJohn A Rooke, R John Wallace, Carol-Anne Duthie, et al.
The Journal of Nutrition|June 29, 2012
Dietary fish oil supplements modify ruminal biohydrogenation, alter the flow of fatty acids at the omasum, and induce changes in the ruminal Butyrivibrio population in lactating cowsKevin J Shingfield, Piia Kairenius, Anu Arölä, et al.
Plos One|July 14, 2017
Taxon abundance, diversity, co-occurrence and network analysis of the ruminal microbiota in response to dietary changes in dairy cowsIlma Tapio, Daniel Fischer, Lucia Blasco, et al.
Environmental Microbiology|March 23, 2011
As yet uncultured bacteria phylogenetically classified as Prevotella, Lachnospiraceae incertae sedis and unclassified Bacteroidales, Clostridiales and Ruminococcaceae may play a predominant role in ruminal biohydrogenationSharon A Huws, Eun J Kim, Michael R F Lee, et al.
Veterinary Journal (London, England : 1997)|January 5, 2019
Evaluation of reticuloruminal pH measurements from individual cattle: Sampling strategies for the assessment of herd statusNicholas N Jonsson, Joachim L Kleen, R John Wallace, et al.
Pageof 6

Showing results (41-50 of 59) with videos related to

Sort By:
Pageof 6
The Biochemical Journal|April 16, 2003
Characterization of XYN10B, a modular xylanase from the ruminal protozoan Polyplastron multivesiculatum, with a family 22 carbohydrate-binding module that binds to celluloseEstelle Devillard, Christel Bera-Maillet, Harry J Flint, et al.
BMC Genomics|October 24, 2015
The rumen microbial metagenome associated with high methane production in cattleR John Wallace, John A Rooke, Nest McKain, et al.
Microbiome|December 13, 2017
The rumen microbiome as a reservoir of antimicrobial resistance and pathogenicity genes is directly affected by diet in beef cattleMarc D Auffret, Richard J Dewhurst, Carol-Anne Duthie, et al.
Microbiome|November 20, 2019
Correction to: The rumen microbiome as a reservoir of antimicrobial resistance and pathogenicity genes is directly affected by diet in beef cattleMarc D Auffret, Richard J Dewhurst, Carol-Anne Duthie, et al.
Plos One|March 18, 2016
Oral Samples as Non-Invasive Proxies for Assessing the Composition of the Rumen Microbial CommunityIlma Tapio, Kevin J Shingfield, Nest McKain, et al.
The British Journal of Nutrition|May 1, 2014
Hydrogen and methane emissions from beef cattle and their rumen microbial community vary with diet, time after feeding and genotypeJohn A Rooke, R John Wallace, Carol-Anne Duthie, et al.
The Journal of Nutrition|June 29, 2012
Dietary fish oil supplements modify ruminal biohydrogenation, alter the flow of fatty acids at the omasum, and induce changes in the ruminal Butyrivibrio population in lactating cowsKevin J Shingfield, Piia Kairenius, Anu Arölä, et al.
Plos One|July 14, 2017
Taxon abundance, diversity, co-occurrence and network analysis of the ruminal microbiota in response to dietary changes in dairy cowsIlma Tapio, Daniel Fischer, Lucia Blasco, et al.
Environmental Microbiology|March 23, 2011
As yet uncultured bacteria phylogenetically classified as Prevotella, Lachnospiraceae incertae sedis and unclassified Bacteroidales, Clostridiales and Ruminococcaceae may play a predominant role in ruminal biohydrogenationSharon A Huws, Eun J Kim, Michael R F Lee, et al.
Veterinary Journal (London, England : 1997)|January 5, 2019
Evaluation of reticuloruminal pH measurements from individual cattle: Sampling strategies for the assessment of herd statusNicholas N Jonsson, Joachim L Kleen, R John Wallace, et al.
Pageof 6