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Understanding and Mitigating Methane Emissions from Cattle

By Galen Erickson and Rick Rasby et.al

Methane (CH₄) is one of the three primary greenhouse gases (GHGs) contributing to global warming, alongside carbon dioxide (CO₂) and nitrous oxide (N₂O). Although methane comprises about 11% of total GHGs, it is significantly more potent in trapping heat than CO₂. Importantly, methane has a relatively short atmospheric half-life of 9 to 12 years, meaning reductions in methane emissions can yield quicker climate benefits compared to other GHGs.

In agriculture, methane emissions primarily stem from enteric fermentation in ruminants like beef and dairy cattle. These animals possess a rumen which is a large fermentation chamber populated by billions of microbes including bacteria, archaea (specifically methanogens), fungi, and protozoa. These microbes break down fibrous plant materials, enabling cattle to convert otherwise indigestible feed into useable energy and protein. However, this microbial digestion also produces methane, which is expelled through eructation (or burping). Cattle can produce 150 - 600 liters (40 - 160 gallons) of methane per day, and this process accounts for about 4% of the 10% of GHGs attributed to agriculture.

Methane production is influenced by several factors including diet, feed intake, animal and microbial genetics, and stage or phase of production. Research has shown that methane output is a moderately heritable trait, opening the door to genetic selection as a mitigation strategy. In fact, recent grants have been awarded to UNL researchers to explore genetic tools and microbiome management strategies aimed at reducing methane emissions without compromising animal performance.

Source : unl.edu

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Methionine Requirements for Lactating Sows - Cierra Kozole

Video: Methionine Requirements for Lactating Sows - Cierra Kozole


In this episode of The Swine Nutrition Blackbelt Podcast, Cierra Kozole, PhD candidate in Swine Nutrition at the University of Guelph, explains how methionine supports lactating sows beyond milk protein synthesis. She discusses updated requirement estimates, source comparisons, methylation demand, and why modern sow genetics may require more precise amino acid strategies. Listen now on all major platforms!

"Methionine supports protein synthesis while also serving critical functions through methylation pathways that influence multiple biological processes."

Meet the guest: Cierra Kozole / cierra-kozole-772b64253 is a PhD candidate in Swine Nutrition at the University of Guelph in Canada. Her doctoral research focuses on refining estimates of methionine requirements for primiparous lactating sows, including evaluating methionine sources, nutrient partitioning, methylation reactions, and the links among amino acid supply, milk production, and sow protein retention. Learn more from Cierra Kozole on The Swine Nutrition Blackbelt Podcast, available on all major platforms.