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Tim A. McAllister

· Agriculture and Agri-Food Canada

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Tim A. McAllister is a registered researcher in their academic field.

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Ruminant Nutrition and Digestive Physiology, Legume Nitrogen Fixing Symbiosis, Turfgrass Adaptation and Management · 2015 · Scientific Reports

Rumen microbial community composition varies with diet and host, but a core microbiome is found across a wide geographical range

Gemma Henderson, Faith Cox, Siva Ganesh, Arjan Jonker, Wayne Young, Global Rumen Census Collaborators, Leticia Abecia, Erika Angarita, Paula Aravena, Graciela Nora Arenas, Claudia Ariza, Graeme T. Attwood, Jose Mauricio Avila, Jorge Ávila–Stagno, A. Bannink, Rolando Barahona Rosales, Mariano Batistotti, Mads F. Bertelsen, Aya Brown-Kav, A. Carvajal, Laura Cersosimo, Alex V. Chaves, John S. Church, Nicholas Clipson, Mario A. Cobos-Peralta, Adrian L. Cookson, Silvio Cravero, Omar Cristobal-Carballo, Katie Crosley, G. D. Cruz, María Esperanza Cerón‐Cucchi, Rodrigo de la Barra, Alexandre B. de Menezes, Edênio Detmann, K. Dieho, J. Dijkstra, William Lima Santiago dos Reis, M. E. R. Dugan, Seyed Hadi Ebrahimi, Emma Eythórsdóttir, Fabian Nde Fon, Martín Fraga, Francisco Franco, Chris Friedeman, Naoki Fukuma, Dragana Gagić, Isabelle D.M. Gangnat, Diego Grilli, Le Luo Guan, Vahideh Heidarian Miri, Emma Hernandez‐Sanabria, Alma Ximena Ibarra Gomez, O. A. Isah, Suzanne L. Ishaq, Elie Jami, Juan Jelincic, Juha Kantanen, William J. Kelly, Seon‐Ho Kim, Athol V. Klieve, Yasuo Kobayashi, Satoshi Koike, J Kopečný, Torsten Nygaard Kristensen, S.J. Krizsan, Hannah Lachance, Medora Lachman, W. R. Lamberson, Suzanne C. Lambie, Jan Lassen, Sinead C. Leahy, Sang-Suk Lee, Florian Leiber, E. Lewis, Bo Lin, Raúl Lira, Peter Lund, Edgar Macipe, Lovelia L. Mamuad, Hilário Cuquetto Mantovani, Gisela Marcoppido, Cristian Márquez, Cécile Martin, G. Martı́nez, María Eugenia Martínez, Olga Lucía Mayorga, Tim A. McAllister, Christopher S. McSweeney, Lorena Mestre, Elena Minnée, Makoto Mitsumori, Itzhak Mizrahi, Isabel Molina, A. Muenger, Camila Muñoz, Boštjan Murovec, J.R. Newbold, Victor Nsereko, M. O’Donovan, Sunday Adewale Okunade

Ruminant livestock are important sources of human food and global greenhouse gas emissions. Feed degradation and methane formation by ruminants rely on metabolic interactions between rumen microbes and affect ruminant productivity. Rumen and camelid foregut microbial community composition was determined in 742 samples from 32 animal species and 35 countries, to estimate if this was influenced by diet, host species, or geography. Similar bacteria and archaea dominated in nearly all samples, while protozoal communities were more variable. The dominant bacteria are poorly characterised, but the methanogenic archaea are better known and highly conserved across the world. This universality and limited diversity could make it possible to mitigate methane emissions by developing strategies that target the few dominant methanogens. Differences in microbial community compositions were predominantly attributable to diet, with the host being less influential. There were few strong co-occurrence patterns between microbes, suggesting that major metabolic interactions are non-selective rather than specific.

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Soil Carbon and Nitrogen Dynamics, Bioenergy crop production and management, Environmental Impact and Sustainability · 2007 · Philosophical Transactions of the Royal Society B Biological Sciences

Greenhouse gas mitigation in agriculture

Agricultural lands occupy 37% of the earth's land surface. Agriculture accounts for 52 and 84% of global anthropogenic methane and nitrous oxide emissions. Agricultural soils may also act as a sink or source for CO2, but the net flux is small. Many agricultural practices can potentially mitigate greenhouse gas (GHG) emissions, the most prominent of which are improved cropland and grazing land management and restoration of degraded lands and cultivated organic soils. Lower, but still significant mitigation potential is provided by water and rice management, set-aside, land use change and agroforestry, livestock management and manure management. The global technical mitigation potential from agriculture (excluding fossil fuel offsets from biomass) by 2030, considering all gases, is estimated to be approximately 5500-6000Mt CO2-eq.yr-1, with economic potentials of approximately 1500-1600, 2500-2700 and 4000-4300Mt CO2-eq.yr-1 at carbon prices of up to 20, up to 50 and up to 100 US$ t CO2-eq.-1, respectively. In addition, GHG emissions could be reduced by substitution of fossil fuels for energy production by agricultural feedstocks (e.g. crop residues, dung and dedicated energy crops). The economic mitigation potential of biomass energy from agriculture is estimated to be 640, 2240 and 16 000Mt CO2-eq.yr-1 at 0-20, 0-50 and 0-100 US$ t CO2-eq.-1, respectively.