Estimated enteric methane production from volatile fatty acids in the ruminal fluid of dairy cows supplemented with Lithothamnium Calcareum

Authors

DOI:

https://doi.org/10.5965/223811712342024776

Keywords:

methane mitigation, seaweed, ruminants, greenhouse gas

Abstract

The aim of this study was to estimate methane (CH4) production from the proportions of volatile fatty acids (VFA) in ruminal fluid and to determine its relationship with dry matter intake (DMI) in dairy cows supplemented with Lithothamnium calcareum. Six multiparous lactating Holstein cows were divided into two experimental groups: control group (CON; n=3) supplemented with 1.1% DM of sodium bicarbonate; and Lithothamnium calcareum group (LITHO; n=3) supplemented with 0.5% DM of Lithothamnium calcareum. Ruminal fluid was collected once a week to evaluate pH and VFA. DMI of the animals was recorded daily. CH4 production was estimated using equations based on ruminal VFA proportions. There was no difference in DMI (kg/day), VFA concentrations and acetate/propionate ratio between the groups (P>0.05). The methane yield (g CH4/kg DMI) did not differ (P>0.05) between the groups in the equation models tested. There was no satisfactory correlation between DMI and CH4 yield for animals in the LITHO and CON groups. Lithothamnium calcareum as a feed additive was not able to reduce CH4 production, estimated from equations based on ruminal VFA proportions.

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References

BERCHIELLI TT et al. 2011. Nutrição de Ruminantes. Jaboticabal: Funep.

CAREGA MFCS & DANTAS A. 2017. Metano ruminal e o uso de taninos condensados como estratégia de mitigação. Nucleus Animalium 9: 51-64.

CHARMLEY E et al. 2016. A universal equation to predict methane production of forage-fed cattle in Australiam. Animal Productiom Science 56: 169–180.

DIAS GTM. 2000. Granulados bioclásticos: algas calcárias. Brazilian Journal of Geophysics 18: 1-19.

EUGÈNE M et al. 2011. Dietary linseed and starch supplementation decreases methane production of fattening bulls. Animal Feed Science and Technology 166: 330–337.

HAMMOND KJ et al. 2015. Methane emissions from cattle: Estimates from short-term measurements using a GreenFeed system compared with measurements obtained using respiration chambers or sulphur hexafluoride tracer. Animal Feed Science and Technology 203: 41–52.

JMP®, Version Pro 14. SAS Institute Inc., Cary, NC, 1989–2024.

KINLEY RD et al. 2020. Mitigating the carbon footprint and improving productivity of ruminant livestock agriculture using a red seaweed. Journal of Cleaner Production 259: 120836.

LI X et al. 2018. Asparagopsis taxiformis decreases enteric methane production from sheep. Anim. Prod. Sci. 58: 681-688.

MACHADO L et al. 2016. Dose-response effects of Asparagopsis taxiformis and Oedogonium sp. on in vitro fermentation and methane production. Journal of Applied Phycology 28: 1443-1452.

MAIA MRG et al. 2016. The potential role of seaweeds in the natural manipulation of rumen fermentation and methane production. Scientific Reports 6: 32321.

MORGAVI D et al. 2010. Microbial ecosystem and methanogenesis in ruminants. Animal 4: 1024-1036.

NEVILLE EW et al. 2022. Effects of calcareous marine algae on mil yield, feed intake, energy balance, mineral status, and inflammatory markers in transition dairy cows. Journal of Dairy Science 105: 6616–6627.

NEVILLE EW et al. 2019. The effect of calcareous marine algae, with or without marine magnesium oxide, and sodium bicarbonate on rumen pH and milk yield in mid lactation dairy cows. Journal of Dairy Science 102: 8027-8039.

NIU M et al. 2018. Prediction of enteric methane production, yield, and intensity in dairy cattle using an intercontinental database. Global Change Biology 24: 3368–3389.

ROQUE BM et al. 2019. Inclusion of Asparagopsis armata in lactating dairy cows’ diet reduces enteric methane emission by over 50 percent. Journal of Cleaner Production. 234: 132-138.

SAUVANT D & GIGER-REVERDIN S. 2009. Modélisation des interactions digestives et de la production de méthane. INRAE Productions Animales 22: 375–384.

SIMANUNGKALIT G et al. 2023. The effects of antibiotic-free supplementation on the ruminal pH variability and methane emissions of beef cattle under the challenge of subacute ruminal acidosis (SARA). Research in Veterinary Science. 160:30-38.

WANG M et al. 2021. Comparison of HPLC and NMR for quantification of the main volatile fatty acids in rumen digesta. Scientific Reports 11: 1-15.

WILLIAMS SRO et al. 2019. Volatile Fatty Acids in Ruminal Fluid Can Be Used to Predict Methane Yield of Dairy Cows. Animals 9: 1006

Published

2024-12-18

How to Cite

SAVELA, Magna Fabrícia Brasil; LONDERO, Uriel Secco; VIEIRA, Laura Valadão; PINO, Francisco Augusto Burkert Del; CORRÊA, Marcio Nunes. Estimated enteric methane production from volatile fatty acids in the ruminal fluid of dairy cows supplemented with Lithothamnium Calcareum. Revista de Ciências Agroveterinárias, Lages, v. 23, n. 4, p. 776–781, 2024. DOI: 10.5965/223811712342024776. Disponível em: https://revistas.udesc.br/index.php/agroveterinaria/article/view/24952. Acesso em: 22 dec. 2024.

Issue

Section

Research Note - Science of Animals and Derived Products