Feed Additives
Producers can now purchase feed additives such as those containing the seaweed Asparagopsis, 3-NOP and oil supplements which can significantly reduce methane emissions in ruminants. Such additives are included in small proportions in feed rations and hence are better suited to intensive dairy or beef cattle production systems. Research continues regarding potential delivery mechanisms in more extensive environments.
Early breeding
Animals intended for breeding do not contribute economically until they deliver their first offspring. However, in the meantime they consume feed and generate methane emissions. Reducing the time before first joining can therefore reduce emissions intensity and increase profitability. However, females must be at a suitable weight before they can breed for the first time. Mating underweight young females can result in lower reproductive performance which can offset any emissions reductions gained from mating early.
Retaining high performing animals
Culling for age is a standard management practice across most NSW beef and sheep properties. However, the strategy can lead to the loss of high performing animals from the herd or flock. Retaining high-performing females and reducing the number of non-productive females being reared can help to reduce emissions intensity.
Enhancing fertility
Higher fertility means that fewer breeding animals are needed in the herd to meet production targets, resulting in a reduction of methane emissions. Enhanced fertility rates can be achieved by increasing the amount of energy supplied to cows and ewes during the breeding season (nutritional flushing). Culling unproductive breeding animals and selecting for improved fertility can also help to enhance the fertility of the herd or flock and therefore reduce methane emissions.
Improving animal health and welfare
Diseased animals or those with poor welfare have lower productivity and reproduction rates. Maintaining herd health and welfare through good husbandry (including disease prevention) and culling for disease will reduce methane emissions as well as increase growth rates and reproductive performance. Maintaining health is particularly important for dairy cattle and wool sheep, to ensure long productive lifetimes.
Genetically selecting animals that produce less methane
Genetically selecting for animals that produce less methane can also lead to higher productivity and yield. While genetic selection is a slow process, and may compromise other economic traits, it is however cumulative and permanent hence can be significant over time. For example, research shows that methane yield in beef cattle can be reduced through genetic selection focused on methane without sacrificing production gains. Research to identify and apply genetic markers and genomic breeding values for animals with lower methane is currently underway. Such genetic selection is likely to become a more attractive strategy in coming years.
Pastures that reduce ruminant emissions
Research is currently underway to determine pasture species and pasture mixes that have properties that lead to reduced methane production when consumed by ruminants. Such research will provide an additional tool for producers to reduce emissions if initial hypotheses are proven in trials.
Rumen manipulation
Significant opportunity exists to reduce methane emissions by better understanding the rumen biome and the potential to manipulate this biome via feed additives, vaccines, boluses or other options. Further research is required in this area.
General Pasture Management
Opportunities exist in managing pastures including pasture quality for livestock enterprises. This includes managing soil constraints which in turn can influence pasture species, pasture quality and amount for livestock. Research continues to investigate interactions between soils, pastures and livestock.
