Diet effects on urine composition of cattle and N2O emissions

被引:298
作者
Dijkstra, J. [1 ]
Oenema, O. [2 ,3 ]
van Groenigen, J. W. [3 ]
Spek, J. W. [1 ,4 ]
van Vuuren, A. M. [4 ]
Bannink, A. [4 ]
机构
[1] Wageningen Univ, Anim Nutr Grp, NL-6700 AH Wageningen, Netherlands
[2] Wageningen UR, Alterra, NL-6700 AA Wageningen, Netherlands
[3] Wageningen Univ, Dept Soil Qual, NL-6700 AA Wageningen, Netherlands
[4] Wageningen UR Livestock Res, NL-8200 AB Lelystad, Netherlands
关键词
nitrogen; urine; cattle; nitrous oxide; mitigation; MILK UREA CONCENTRATION; NITROUS-OXIDE EMISSION; HIPPURIC-ACID CONTENT; DAIRY-COWS; PROTEIN-SYNTHESIS; AROMATIC-ACIDS; EXCRETION; SOIL; METABOLISM; RUMINANTS;
D O I
10.1017/S1751731113000578
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
Ruminant production contributes to emissions of nitrogen (N) to the environment, principally ammonia (NH3), nitrous oxide (N2O) and di-nitrogen (N-2) to air, nitrate (NO3 (-)) to groundwater and particulate N to surface waters. Variation in dietary N intake will particularly affect excretion of urinary N, which is much more vulnerable to losses than is faecal N. Our objective is to review dietary effects on the level and form of N excreted in cattle urine, as well as its consequences for emissions of N2O. The quantity of N excreted in urine varies widely. Urinary N excretion, in particular that of urea N, is decreased upon reduction of dietary N intake or an increase in the supply of energy to the rumen microorganisms and to the host animal itself. Most of the N in urine (from 50% to well over 90%) is present in the form of urea. Other nitrogenous components include purine derivatives (PD), hippuric acid, creatine and creatinine. Excretion of PD is related to rumen microbial protein synthesis, and that of hippuric acid to dietary concentration of degradable phenolic acids. The N concentration of cattle urine ranges from 3 to 20 g/l. High-dietary mineral levels increase urine volume and lead to reduced urinary N concentration as well as reduced urea concentration in plasma and milk. In lactating dairy cattle, variation in urine volume affects the relationship between milk urea and urinary N excretion, which hampers the use of milk urea as an accurate indicator of urinary N excretion. Following its deposition in pastures or in animal houses, ubiquitous microorganisms in soil and waters transform urinary N components into ammonium (NH4 (+)), and thereafter into NO3 (-) and ultimately in N-2 accompanied with the release of N2O. Urinary hippuric acid, creatine and creatinine decompose more slowly than urea. Hippuric acid may act as a natural inhibitor of N2O emissions, but inhibition conditions have not been defined properly yet. Environmental and soil conditions at the site of urine deposition or manure application strongly influence N2O release. Major dietary strategies to mitigating N2O emission from cattle operations include reducing dietary N content or increasing energy content, and increasing dietary mineral content to increase urine volume. For further reduction of N2O emission, an integrated animal nutrition and excreta management approach is required.
引用
收藏
页码:292 / 302
页数:11
相关论文
共 65 条
[21]   RENAL UREA HANDLING IN GOATS FED HIGH AND LOW PROTEIN DIETS [J].
ERIKSSON, L ;
VALTONEN, M .
JOURNAL OF DAIRY SCIENCE, 1982, 65 (03) :385-389
[22]  
Estrada A., 2011, World livestock 2011: livestock in food security
[23]  
Firkins JL, 2005, NITROGEN AND PHOSPHORUS NUTRITION OF CATTLE: REDUCING THE ENVIRONMENTAL IMPACT OF CATTLE OPERATIONS, P167, DOI 10.1079/9780851990132.0167
[24]   Metabolism of microbial nitrogen in ruminants with special reference to nucleic acids [J].
Fujihara, Tsutomu ;
Shem, Martin N. .
ANIMAL SCIENCE JOURNAL, 2011, 82 (02) :198-208
[25]   EVALUATION OF DIETARY NITROGEN-UTILIZATION IN DAIRY-COWS BASED ON UREA CONCENTRATIONS IN BLOOD, URINE AND MILK, AND ON URINARY CONCENTRATION OF PURINE DERIVATIVES [J].
GONDA, HL ;
LINDBERG, JE .
ACTA AGRICULTURAE SCANDINAVICA SECTION A-ANIMAL SCIENCE, 1994, 44 (04) :236-245
[26]   Milk protein synthesis in response to the provision of an "ideal" amino acid profile at 2 levels of metabolizable protein supply in dairy cows [J].
Haque, M. N. ;
Rulquin, H. ;
Andrade, A. ;
Faverdin, P. ;
Peyraud, J. L. ;
Lemosquet, S. .
JOURNAL OF DAIRY SCIENCE, 2012, 95 (10) :5876-5887
[27]   A meta-analysis of the effects of dietary protein concentration and degradability on milk protein yield and milk N efficiency in dairy cows [J].
Huhtanen, P. ;
Hristov, A. N. .
JOURNAL OF DAIRY SCIENCE, 2009, 92 (07) :3222-3232
[28]   The future of animal production: improving productivity and sustainability [J].
Hume, D. A. ;
Whitelaw, C. B. A. ;
Archibald, A. L. .
JOURNAL OF AGRICULTURAL SCIENCE, 2011, 149 :9-16
[29]  
Kebreab E., 2010, Energy and protein metabolism and nutrition. 3rd EAAP International Symposium on Energy and Protein Metabolism and Nutrition, Parma, Italy, 6-10 September, 2010, P417
[30]  
Kehraus S., 2006, Ubersichten zur Tierernahrung, V34, P125