Effects of rotating antibiotic and ionophore feed additives on volatile fatty acid production, potential for methane production, and microbial populations of steers consuming a moderate-forage diet

被引:12
|
作者
Crossland, W. L. [1 ]
Tedeschi, L. O. [1 ]
Callaway, T. R. [2 ,4 ]
Miller, M. D. [1 ]
Smith, W. B. [1 ,5 ]
Cravey, M. [3 ,6 ]
机构
[1] Texas A&M Univ, Dept Anim Sci, College Stn, TX 77843 USA
[2] USDA ARS, Southern Plains Area, College Stn, TX 77845 USA
[3] Huvepharma Inc, US Cattle Business Unit, Amarillo, TX 79101 USA
[4] Univ Georgia, Dept Anim & Dairy Sci, Athens, GA 30602 USA
[5] Tarleton State Univ, Stephenville, TX 76401 USA
[6] Phileo Lesaffre Anim Care, North Amer Ruminant Programs, Canyon, TX 79101 USA
关键词
antibiotic; ionophore; methane; ruminal bacteria; volatile fatty acids; IN-VITRO; ERYSIPELOTHRIX-RHUSIOPATHIAE; SWINE ERYSIPELAS; GENOME SEQUENCE; RUMEN; FERMENTATION; MONENSIN; SHEEP; ADAPTATION; MITIGATION;
D O I
10.2527/jas2017.1665
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
Ionophores and antibiotics have been shown to decrease ruminal methanogenesis both in vitro and in vivo but have shown little evidence toward a sustainable means of mitigation. Feed additive rotation was proposed and investigated for methane, VFA, and microbial population response. In the present study, cannulated steers (n = 12) were fed a moderate-forage basal diet in a Calan gate facility for 13 wk. In addition to the basal diet, steers were randomly assigned to 1 of 6 treatments: 1) control, no additive; 2) bambermycin, 20 mg bambermycin/d; 3) monensin, 200 mg monensin/d; 4) the basal diet + weekly rotation of bambermycin and monensin treatments (B7M); 5) the basal diet + rotation of bambermycin and monensin treatments every 14 d (B14M); and 6) the basal diet ei+ rotation of bambermycin and monensin treatments every 21 d (B21M). Steers were blocked by wght in a randomized complete block design where the week was the repeated measure. Rumen fluid was collected weekly for analysis (n = 13), and results were normalized according to individual OM intake (OMI; kg/d). Potential activity of methane production was not significantly different among treatments (P > 0.05). However, treatment tended to affect the CH4-to-propionate ratio (P = 0.0565), which was highest in the control and lowest in the monensin, B21M, and B14M treatments (0.42 vs. 0.36, 0.36, and 0.33, respectively). The CH4:propionate ratio was lowest in wk 2 and 3 (P < 0.05) but the ratio in wk 4 to 12 was not different from the ratio in wk 0. Week also affected total VFA, with total VFA peaking at wk 3 and plummeting at wk 4 (4.02 vs. 2.86 mM/kg OMI; P < 0.05). A significant treatment x week interaction was observed for the acetate-to-propionate (A: P) ratio, where bambermycin- and rotationally fed steers did not have a reduced A: P ratio compared with monensin-fed steers throughout the feeding period (P < 0.0001). Microbial analysis revealed significant shifts, but several predominant classes showed adaptation between 4 and 6 wk after additive initiation. There was no significant evidence to suggest that rotations of monensin and bambermycin provided additional benefits to steers consuming a moderate-forage diet at the microbial/animal and environmental level versus those continuously fed.
引用
收藏
页码:4554 / 4567
页数:14
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