Home LiteratureArticle Details
PMID: 24193494 Published · ppublish English Journal Article

Control of rumen methanogenesis.

Environmental monitoring and assessment ·Vol. 42 ·No. 1-2 ·1996-09-00 ·Pages 73-97

Van Nevel CJ, Demeyer DI

Abstract

During the last decades, considerable research on methane production in the rumen and its inhibition has been carried out. Initially, as methane production represents a significant loss of gross energy in the feed (2-15%), the ultimate goal of such intervention in rumen fermentation was an increase in feed efficiency. A second reason favouring research on methane inhibition is its role in the global warming phenomenon and in the destruction of the ozone layer. In this review, the authors describe briefly several interventions for reducing methane emission by ruminants. The objective can be reached by intervention at the dietary level by ration manipulation (composition, feeding level) or by the use of additives or supplements. Examples of additives are polyhalogenated compounds, ionophores and other antibiotics. Supplementation of the ration with lipids also lowered methanogenesis. More biotechnological interventions, e.g., defaunation, probiotics and introduction of reductive acetogenesis in the rumen, are also mentioned. It can be concluded that drastic inhibition of methane production is not unequivocally successful as a result of several factors, such as: instantaneous inhibition often followed by restoration of methanogenesis due to adaptation of the microbes or degradation of the additive, toxicity for the host animal, negative effects on overall digestion and productive performance. Therefore, methanogenesis and its inhibition cannot be considered as a separate part of rumen fermentation and its consequences on the animal should be taken into account.

Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Van Nevel C J
Department of Animal Production, University of Ghent, 9090, Melle, Belgium.
Demeyer D I
References (75)
75 references, click to expand
  1. The metabolism of oleic, linoleic and linolenic acids by sheep with reference to their effects on methane production.
    Br J Nutr. 1966;20(2):349-62 PMID: 5938713
  2. Effect of energy level and feeding frequency on site of digestion and postruminal nutrient flows in steers.
    J Dairy Sci. 1990 Sep;73(9):2470-9 PMID: 2258490
  3. Effects of additives on in vitro ruminal fermentation: a comparison of monensin and bacitracin, another gram-positive antibiotic.
    J Anim Sci. 1988 Feb;66(2):552-8 PMID: 3372392
  4. Pure culture studies of inhibitors for methanogenic bacteria.
    Antonie Van Leeuwenhoek. 1972;38(3):281-7 PMID: 4538621
  5. [In vitro study of ionophore antibiotics and various derivatives. I. Action on fermentation products in the rumen].
    Reprod Nutr Dev. 1986;26(6):1295-303 PMID: 3823605
  6. Effect of chloral hydrate on methane and propionic acid in the rumen.
    Appl Microbiol. 1969 May;17(5):695-700 PMID: 5785952
  7. Physical form of the diet in relation to rumen fermentation.
    Proc Nutr Soc. 1972 Sep;31(2):127-34 PMID: 4563286
  8. Manipulation of the gut microflora: experimental approach in animals.
    Proc Nutr Soc. 1993 Aug;52(2):345-56 PMID: 8234356
  9. Viologen dye inhibition of methane formation by Methanobacillus omelianskii.
    J Bacteriol. 1964 May;87(5):993-8 PMID: 5874549
  10. Influence of monensin on the performance of cattle.
    J Anim Sci. 1984 Jun;58(6):1484-98 PMID: 6378865
  11. [Food digestibility and N-metabolism in sheep fed concentrated feed at varying frequencies].
    Z Tierphysiol Tierernahr Futtermittelkd. 1976 Dec;37(6):322-9 PMID: 14457
  12. ACTION OF CHLORAL HYDRATE ON RUMEN MICROORGANISMS IN VITRO.
    J Dairy Sci. 1965 Jul;48:991-3 PMID: 14327680
  13. Manipulation of microbial activity in the rumen.
    Arch Tierernahr. 1994;46(2):133-53 PMID: 7717843
  14. Methane production in ruminants and its significance.
    World Rev Nutr Diet. 1969;11:240-82 PMID: 4905932
  15. The autotrophic pathway of acetate synthesis in acetogenic bacteria.
    Annu Rev Microbiol. 1986;40:415-50 PMID: 3096193
  16. Influence of level and source of dietary fat on its comparative feeding value in finishing diets for feedlot steers: metabolism.
    J Anim Sci. 1989 Apr;67(4):1038-49 PMID: 2715109
  17. Effect of direct-fed microbials on rumen microbial fermentation.
    J Dairy Sci. 1992 Jun;75(6):1736-44 PMID: 1500571
  18. Effect of lasalocid on feedlot performance and energy partitioning in cattle.
    J Anim Sci. 1988 Jan;66(1):136-50 PMID: 3366703
  19. Monensin and dichloroacetamide influences on methane and volatile Fatty Acid production by rumen bacteria in vitro.
    Appl Environ Microbiol. 1979 Feb;37(2):283-8 PMID: 16345344
  20. Effects of monensin and amicloral on rumen fermentation.
    J Anim Sci. 1980 Jul;51(1):170-9 PMID: 7410269
  21. The effect of C18 unsaturated fatty acids of methane production in vitro by mixed rumen bacteria.
    Biochim Biophys Acta. 1967 Jun 6;137(3):484-97 PMID: 6072276
  22. Monensin supplementation and in vivo methane production by steers.
    J Anim Sci. 1981 Mar;52(3):628-34 PMID: 6267003
  23. The effect of trichloroacetamide, chloroform and linseed oil given into the rumen of sheep on some of the end-products of rumen digestion.
    Br J Nutr. 1974 Jul;32(1):155-61 PMID: 4408011
  24. Effects of a ruminal methane inhibitor on growth and energy metabolism in the ovine.
    J Anim Sci. 1974 Apr;38(4):908-14 PMID: 4823200
  25. Significance to the host of changes in fermentation activity.
    Proc Nutr Soc. 1972 Sep;31(2):165-70 PMID: 4563291
  26. Monensin effects on digestibility, methanogenesis and heat increment of a cracked corn-silage diet fed to steers.
    J Anim Sci. 1983 Jul;57(1):168-77 PMID: 6885657
  27. Effect of low-roughage diets on the microflora and lipid metabolism in the rumen.
    Appl Microbiol. 1972 Dec;24(6):871-7 PMID: 16349951
  28. Changes in the rumen metabolism of sheep given increasing amounts of linseed oil in their diet.
    Br J Nutr. 1975 Jul;34(1):25-44 PMID: 1173782
  29. A simple method for the simultaneous determination of gas production and volatile fatty acid concentration in the rumen.
    Z Tierphysiol Tierernahr Futtermittelkd. 1970 Mar;26(2):100-4 PMID: 5489661
  30. Effects of monensin, pyromellitic diimide and 2-bromoethanesulfonic acid on rumen fermentation in vitro.
    J Anim Sci. 1985 Feb;60(2):544-50 PMID: 2985530
  31. The effect of inhibitors of methane production on fermentation pattern and stoichiometry in vitro using rumen contents from sheep given molasses.
    Br J Nutr. 1973 Sep;30(2):369-76 PMID: 4746693
  32. Effect of sodium sulfite on methane and propionate in the rumen.
    Z Tierphysiol Tierernahr Futtermittelkd. 1970 Mar;26(2):91-100 PMID: 5489666
  33. Postprandial changes in methanogenic and acidogenic bacteria in the rumens of steers fed high- or low-forage diets once daily.
    Appl Environ Microbiol. 1988 Feb;54(2):502-6 PMID: 3355135
  34. Influence of methane inhibition on energetic efficiency of lambs.
    J Anim Sci. 1972 Mar;34(3):510-5 PMID: 5010639
  35. Effects of aibellin, a novel peptide antibiotic, on rumen fermentation in vitro.
    J Dairy Sci. 1993 Aug;76(8):2213-21 PMID: 7691910
  36. Features of rumen and sewage sludge strains of Eubacterium limosum, a methanol- and H2-CO2-utilizing species.
    Appl Environ Microbiol. 1981 Jul;42(1):12-9 PMID: 6791591
  37. Antibiotic feed additives and livestock production.
    Proc Nutr Soc. 1987 Sep;46(3):415-21 PMID: 3324100
  38. Propionic acid production rate in the bovine rumen after feeding untreated and sodium hydroxide-treated straw.
    Z Tierphysiol Tierernahr Futtermittelkd. 1978 Jul;40(4):183-90 PMID: 696001
  39. Methane production from glucose in vitro by mixed rumen bacteria.
    Biochem J. 1967 Oct;105(1):271-7 PMID: 6056628
  40. In vitro effects of the ionophore lysocellin on ruminal fermentation and microbial populations.
    J Anim Sci. 1992 Jan;70(1):281-8 PMID: 1316342
  41. Effect of monensin on the fermentation of basal rations in the Rumen Simulation Technique (Rusitec).
    Br J Nutr. 1981 Jul;46(1):131-48 PMID: 7020749
  42. Prediction of the amount of methane produced by ruminants.
    Br J Nutr. 1965;19(4):511-22 PMID: 5852118
  43. Effect of aibellin, a peptide antibiotic, on propionate production in the rumen of goats.
    J Dairy Sci. 1994 Nov;77(11):3426-31 PMID: 7529270
  44. Transport of coenzyme M (2-mercaptoethanesulfonic acid) in Methanobacterium ruminantium.
    J Bacteriol. 1979 Jan;137(1):264-73 PMID: 33148
  45. Methane prediction in dry and lactating Holstein cows.
    J Dairy Sci. 1992 Aug;75(8):2165-75 PMID: 1401368
  46. The effect of high dietary cation concentration on methanogenesis by steers fed diets with and without ionophores.
    J Anim Sci. 1986 Jun;62(6):1737-41 PMID: 3733567
  47. Effects of Aspergillus oryzae fermentation extract on fermentation of amino acids, bermudagrass and starch by mixed ruminal microorganisms in vitro.
    J Anim Sci. 1990 Jul;68(7):2142-9 PMID: 2384404
  48. Inhibition of rumen methanogenesis by methane analogues.
    J Bacteriol. 1967 Jul;94(1):171-5 PMID: 6067522
  49. Laidlomycin butyrate--an ionophore with enhanced intraruminal activity.
    J Anim Sci. 1983 Dec;57(6):1553-60 PMID: 6674292
  50. Feeding frequency for lactating cows: effects on rumen fermentation and blood metabolites and hormones.
    Br J Nutr. 1986 Jul;56(1):181-92 PMID: 3314980
  51. Effects of a hemiacetal of chloral and starch on methane production and energy balance of sheep fed a pelleted diet.
    J Anim Sci. 1972 Nov;35(5):1064-8 PMID: 5085297
  52. Effect of ionophores on ruminal fermentation.
    Appl Environ Microbiol. 1989 Jan;55(1):1-6 PMID: 2650616
  53. Monensin mode of action in the rumen.
    J Anim Sci. 1984 Jun;58(6):1518-27 PMID: 6378867
  54. Binding of radiolabeled monensin and lasalocid to ruminal microorganisms and feed.
    J Anim Sci. 1994 Jun;72(6):1630-5 PMID: 8071190
  55. Changes in oxidation reduction potentials and volatile fatty acid production by rumen bacteria when methane synthesis is inhibited.
    J Dairy Sci. 1987 Sep;70(9):1835-40 PMID: 2822785
  56. The reaction of multihalogenated hydrocarbons with free and bound reduced vitamin B 12.
    Biochemistry. 1968 May;7(5):1707-13 PMID: 4870333
  57. Effect of methane inhibitors on rumen metabolism and feedlot performance of sheep.
    J Dairy Sci. 1971 Apr;54(4):536-40 PMID: 5570090
  58. In vitro study of the effect of different ionophore antibiotics and of certain derivatives on rumen fermentation and on protein nitrogen degradation.
    Reprod Nutr Dev. 1989;29(3):247-57 PMID: 2590388
  59. Competition between reductive acetogenesis and methanogenesis in the pig large-intestinal flora.
    J Appl Bacteriol. 1994 Jan;76(1):55-61 PMID: 8144406
  60. Effect of monensin on rumen metabolism in vitro.
    Appl Environ Microbiol. 1977 Sep;34(3):251-7 PMID: 911159
  61. Ruminal microbiology, biotechnology, and ruminant nutrition: progress and problems.
    J Anim Sci. 1994 Nov;72(11):2992-3003 PMID: 7730195
  62. New inhibitors of methane production by rumen micro-organisms. Experiments with animals and other practical possibilities.
    Br J Nutr. 1975 Nov;34(3):447-57 PMID: 1201268
  63. Effect of monensin and lasalocid-sodium on the growth of methanogenic and rumen saccharolytic bacteria.
    Appl Environ Microbiol. 1979 Jul;38(1):72-7 PMID: 16345418
  64. On the inverse relationship between methane and propionate in the rumen.
    Z Tierphysiol Tierernahr Futtermittelkd. 1974 Jun;33(3):121-5 PMID: 4471670
  65. Incorporation of soya oil hydrolysate in the diet of defaunated or refaunated sheep: effect on rumen fermentation in vitro.
    Arch Tierernahr. 1990 Apr;40(4):329-37 PMID: 2400320
  66. [Methodology and application of defaunation in the growing ruminant].
    Zentralbl Veterinarmed A. 1986 Dec;33(10):721-45 PMID: 3099501
  67. Properties of a novel series of inhibitors of rumen methanogenesis; in vitro and in vivo experiments including growth trials on 2,4-bis (trichloromethyl)-benzo [1, 3]dioxin-6-carboxylic acid.
    Br J Nutr. 1982 May;47(3):565-76 PMID: 7082625
  68. Effects of the ionophores monensin and tetronasin on simulated development of ruminal lactic acidosis in vitro.
    Appl Environ Microbiol. 1988 Dec;54(12):2981-5 PMID: 3223764
  69. Incorporation of nickel into ruminal factor F430 as affected by monensin and formate.
    J Anim Sci. 1990 May;68(5):1400-4 PMID: 2365652
  70. Effect of feeding frequency on fermentation pattern and microbial activity in the bovine rumen.
    Acta Vet Scand. 1977;18(1):108-21 PMID: 15429
  71. Influence of lasalocid and monensin plus tylosin on comparative feeding value of steam-flaked versus dry-rolled corn in diets for feedlot cattle.
    J Anim Sci. 1987 Jul;65(1):256-66 PMID: 3610873
  72. Effects of long-chain Fatty acids on growth of rumen bacteria.
    Appl Environ Microbiol. 1981 Nov;42(5):856-62 PMID: 16345887
  73. [Effect of the convertibility of energy (Q) on energy maintenance requirement and utilization and convertible energy for the assessment of ruminants. 1. Digestibility of energy and nutrients].
    Arch Tierernahr. 1994;46(1):61-76 PMID: 7733813
  74. Enrichment and isolation of Acetitomaculum ruminis, gen. nov., sp. nov.: acetogenic bacteria from the bovine rumen.
    Arch Microbiol. 1989;151(5):399-406 PMID: 2500921
  75. Effects of the antibiotic monensin and an inhibitor of methanogenesis on in vitro continuous rumen fermentations.
    Br J Nutr. 1981 May;45(3):567-78 PMID: 7236582
Article Info
Journal
Environmental monitoring and assessment
Abbr.
Environ Monit Assess
ISSN
0167-6369
Published
1996-09-00
Pages
73-97
Language
English
Region
Netherlands
NLM ID
8508350
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com