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Bannink, A.

Publications and source records attributed to Bannink, A..

3 recordsLinked to original sources

A meta-analysis of 3-nitrooxypropanol effects on methane production and yield in beef cattle

Beef cattle are a major source of enteric methane (CH4) emissions, a potent greenhouse gas (GHG). The feed additive 3-nitrooxypropanol (3-NOP) has been shown to reduce CH4 emissions by inhibiting methyl-coenzyme M reductase, an enzyme critical to methanogenesis in archaea. This study aimed to quantify the effects of 3-NOP on CH4 production (g/d) and yield (g/kg DM intake; DMI) in beef cattle and to evaluate how diet composition influences the mitigation response. A systematic literature review identified 17 peer-reviewed in vivo studies, yielding 45 treatment means. Treatment effects were expressed as absolute and relative mean differences versus control groups. Predictor variables included 3-NOP dose, 3-NOP dose2, DMI, dietary concentration of NDF, CP, starch, fat, and organic matter (OM), roughage proportion, BW, and dietary inclusion of monensin (yes/no). Four types of models were developed, all including the intercept and 3-NOP dose as fixed predictors, differing as follows: (model 1) optional inclusion of 3-NOP dose2 when P < 0.10; (model 2) model 1 plus pre-inclusion of NDF concentration; (model 3) pre-inclusion of NDF concentration plus additional predictors (pairwise r [&le;] 0.5) that significantly improved model accuracy (P < 0.10); and (model 4) additional predictors selected under the same criteria as model 3, without pre-inclusion of NDF concentration. For models 3 and 4, a maximum of 5 predictors were considered and evaluated using leave-one-out cross-validation. Across studies, 3-NOP doses ranged from 32 to 338 mg/kg of DM. On average, 3-NOP reduced CH4 production by 49.9 {+/-} 28.61 g/d (36.2 {+/-} 24.42%) and CH4 yield by 5.3 {+/-} 3.61 g/kg DMI (33.2 {+/-} 25.54%). The best models were selected based on biological interpretability, statistical significance, and predictive accuracy (as measured by RMSE) and included 3-NOP dose, dietary NDF concentration, DMI, and BW as significant predictors (the latter two only for absolute CH4 production). Mitigation efficacy increased with higher DMI and declined with increasing NDF concentration and BW. Absolute reductions of 53.1 g/d and 5.88 g/kg of DMI, and relative reductions of 37.6% in CH4 production and 35.0% in CH4 yield were predicted when moderators were at their mean value (3-NOP dose = 134.4 mg/kg of DM; NDF concentration = 32.8% of DM; DMI of 8.6 kg/d). These results support the effectiveness of 3-NOP in mitigating enteric CH4 emission in beef cattle and provide quantitative models to be used in assessment tools and GHG inventory methodology. ImplicationsThe feed additive 3-nitrooxypropanol effectively reduces enteric methane emissions in beef cattle. This meta-analysis found average reductions of 36.2% in methane production and 33.2% in methane yield. Efficacy depended on diet composition; declining with increasing NDF concentration for both methane production (g/d) and yield (g/kg of DM intake; DMI). Greater DMI increased absolute methane production reduction but did not influence absolute methane yield reduction or relative reduction of both methane production and yield. These results support the targeted use of 3-nitrooxypropanol as a mitigation strategy and provide empirical models to inform greenhouse gas inventories and carbon accounting.

systems biology↗

Effects of 3-Nitrooxypropanol on Methane Emission, Growth and Feed Intake in Growing Calves from 5 Months of Age

This study aimed to test the effect of 3-nitrooxypropanol (3-NOP) on methane (CH4) emission, feed intake, and body weight (BW) of calves from 5 mo of age. Seventy calves were enrolled in the acclimatization period (3 wk), after which 60 calves were selected based on their ability to use the automated feed bins (FB) and the GreenFeed system. These 60 calves were blocked in pairs for sex, breed, and BW, and within block randomly assigned to 1 of 2 dietary treatments: a partially mixed ration (PMR) supplemented with (1) a placebo contrate (CTL), or with (2) a 3-NOP concentrate (on average 121 mg 3-NOP/kg dry matter of total ration). The acclimatization period was followed by a covariate period (2 wk) in which baseline measurements were performed, and afterwards the treatment period (12 wk) started where the calves received 1 of the 2 dietary treatments. Next to PMR, the calves received up to 1280 g/ day bait in the GreenFeed system, which was used for emission measurements. For analyses, all data was averaged for the covariate period and for different periods in the treatment wk: 1-3, 4-6, 7-9 and 10-12. Upon 3-NOP supplementation, CH4 production (g/d) was significantly reduced by 31.3% in wk 1 - 3, by 27.1% in wk 4 - 6, by 30.0% in wk 7 - 9, and by 30.7% in wk 10 - 12 compared to CTL, and CH4 intensity (g/kg BW) was significantly reduced by 30.0% in week 1 - 3, by 25.8% in wk 4 - 6, by 27.9% in wk 7 - 9, and by 28.6% in wk 10 - 12 compared to CTL. Overall, 3-NOP calves had a reduction of 29.8% for CH4 production, 19.4% for CH4 yield (g/kg dry matter intake; DMI), and 27.9% for CH4 intensity. Calves receiving 3-NOP had a lower total DMI (6.1 kg/d) compared to CTL (6.9 kg/d), driven by a lower DMI of PMR. In every period, calves in 3-NOP had a lower BW (overall: 251 kg) compared to CTL (overall: 258 kg). The 3-NOP group and the CTL group did not differ in initial BW, but calves in the 3-NOP group had a lower final BW (290 kg) compared to CTL (301 kg). Both feed to gain ratio and feed efficiency did not differ between the two treatment groups. It can be concluded that 3-NOP is a promising strategy to persistently decrease CH4 emission in growing beef calves from 5 to 8 mo of age, without negatively impacting feed efficiency.

biochemistry↗

A meta-analysis of effects of seaweed and other bromoform containing feed ingredients on methane production, yield, and intensity in cattle

Methane (CH4) emissions from ruminants contribute significantly to global GHG emissions. Bromoform (CHBr3)-containing feed ingredients, such as Asparagopsis seaweed, have emerged as promising tools to reduce enteric CH4 emissions. This meta-analysis quantitatively assessed the effects of CHBr3-containing seaweeds and synthetic CHBr3-based additives on CH4 production (g/day), CH4 yield (g/kg DMI), and DMI, as well as CH4 intensity (g/kg product) and production (milk or daily gain in dairy and beef cattle, respectively). Data were collected from 14 studies, with 39 treatment mean differences for CH4 production, comprising both beef and dairy cattle fed CHBr3-containing ingredients, while accounting for dose, DMI, and diet composition. The random-effects models estimates revealed that at an average CHBr3 dose of {approx}28.3 mg/kg DM, CH4 production was reduced by 47.3%, CH4 yield by 43.3%, and CH4 intensity by 39.0%, with increases in CHBr3 dose resulting in larger efficacy in mitigating CH4 emissions. The efficacy of CHBr3 was influenced by cattle type, with greater mitigation effects in beef cattle than dairy catle, and by dietary composition, with greater reductions observed in diets higher in starch, whereas higher NDF levels attenuate its effect. At the average CHBr3 dose, estimated DMI was significantly reduced by 6.45% and 3.26% in dairy and beef cattle, respectively. The significant reduction in DMI did translate into a significant effect on milk yield (-4.60%) at average CHBr3 dose. Carrier type (oil vs. biomass), measurement technique and cattle type influenced the results. Oil carrier potentially leading to more pronounced reductions, particularly for CH4 intensity, respiration chambers yielded significantly greater CH4 reductions compared to other methods, and beef cattle showed stronger mitigation effects than dairy cattle. This study highlights the CH4 mitigating potential of CHBr3-containing feed ingredients, providing predictive models to optimize CH4 reduction strategies under diverse production conditions. Future research should address long-term effects, dietary optimization, and practical implementation.

systems biology↗