Effects of Bacillus subtilis on in vitro ruminal fermentation and methane production

16Citations
Citations of this article
19Readers
Mendeley users who have this article in their library.

This article is free to access.

Abstract

The objective of this study was to evaluate the effect of a proprietary strain of a Bacillus subtilis on in vitro ruminal fermentation and methane production in batch culture serum bottles. One hundred forty-nine batch culture bottles were used in a complete randomized block design. The arrangement of treatments was a 3 × 3 × 4 factorial to evaluate the effects of inoculum, time, diet, and their respective interactions. There were three experimental runs total, where the run was used as block. Inoculum treatments were 1.85 mg/mL of microcrystalline cellulose (CON); 10 billion B. subtilis plus microcrystalline cellulose (A1); and 60 billion B. subtilis plus microcrystalline cellulose (A2). Diet treatments were 0.50 g of early lactation diet (E, 30% starch), mid-lactation diet (M, 25% starch), or dry cow diet (D, 18% starch). The combination resulted in total of nine treatments. Each treatment had five replicates, two of which were used to determine nutrient degradability at 24 and 48 h after inoculation, and three were used to determine pH, ammonia nitrogen (NH3-N), volatile fatty acids, lactate, total gas, and methane production at 3, 6, 24, and 48 h after inoculation. Fixed effects of inoculum, diet, and their interaction were tested using the GLIMMIX procedure of SAS. Significance was declared at P ≤ 0.05. We observed that, compared to control, the supplementation of B. subtilis, decreased the production of acetate and propionate, while increasing the production of butyrate, iso-butyrate, valerate, iso-valerate, and caproate within each respective diet. Additionally, the total methane production exhibited mixed responses depending on the diet type. Overall, the inclusion of B. subtilis under in vitro conditions shows the potential to reduce ruminal methane production when supplemented with a mid-lactation diet, constituting a possible methane mitigation additive for dairy cattle diets. Methane emissions from ruminants are an important environmental pollutant in the dairy industry. Direct-fed microbials have been reported to reduce methane emissions, improve ruminal fermentation, and benefit from improving energy efficiency. We evaluated the effect of a Bacillus subtilis on in vitro ruminal fermentation and methane production. Overall, our results indicate that the inclusion of B. subtilis decreased the production of acetate and propionate, while increasing the production of butyrate, iso-butyrate, valerate, iso-valerate, and caproate within each respective diet. Moreover, decreased methane production in ruminal fermentation, when supplemented with a mid-lactation diet but not when supplemented with an early or dry cow diet.

Author supplied keywords

Cite

CITATION STYLE

APA

Sarmikasoglou, E., Sumadong, P., Dagaew, G., Johnson, M. L., Vinyard, J. R., Salas-Solis, G., … Faciola, A. P. (2024). Effects of Bacillus subtilis on in vitro ruminal fermentation and methane production. Translational Animal Science, 8. https://doi.org/10.1093/tas/txae054

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free