反刍与草食动物营养 Ruminant and herbivore nutrition

云南半细毛羊7种常用能量饲料可消化粗蛋白质和有效能的评价

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  • 1. 中国农业大学动物科技学院, 北京 100193;
    2. 云南省畜牧兽医科学院, 昆明 650224;
    3. 贵州省扶贫办外资项目管理中心, 贵阳 550004
付霞杰(1991-),女,河南驻马店人,硕士研究生,从事反刍动物营养与饲料研究。E-mail:18810435065@163.com

收稿日期: 2018-06-19

  网络出版日期: 2019-01-16

基金资助

现代农业产业技术体系建设专项资金资助(CARS-39)

Evaluation of Digestible Crude Protein and Effective Energy of Seven Common Energy Feeds for Yunnan Semi-Fine-Wool Sheep

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  • 1. College of Animal Science and Technology, China Agricultural University, Beijing 100193, China;
    2. Yunnan Animal Science and Veterinary Institute, Kunming 650224, China;
    3. Foreign Capital Project Management Center, Guizhou Proverty Alleviation and Sevelopment Office, Guiyang 550004, China

Received date: 2018-06-19

  Online published: 2019-01-16

摘要

本试验旨在采用概略养分分析法测定半细毛羊7种能量饲料原料(玉米、小麦麸、小麦、大麦、糙米、玉米皮和高粱)的营养成分含量,并通过消化代谢试验结合套算法实测饲料原料的可消化粗蛋白质(DCP)含量和有效能值。试验选取16只24月龄、平均体重为(55.61±5.33)kg的云南半细毛羊,采用完全随机设计,平均分为4组,每组4只。试验共分2期进行,共8种饲粮,分别为基础饲粮和7种试验饲粮,每期饲喂4种饲粮。每期试验10 d,其中预试期5 d,正试期5 d。结果表明:1)小麦麸和玉米皮的粗蛋白质(CP)含量较高,为16%左右,高粱、小麦、糙米和大麦的CP含量介于10%~14%,玉米的CP含量最低,为8.63%。小麦麸和玉米皮的粗纤维(CF)含量分别为8.74%和13.77%,其余能量饲料原料的CF含量均在4%以下;玉米皮的中性洗涤纤维(NDF)含量最高,为58.71%,其次是小麦麸,为36.37%,大麦为24.43%,高粱、小麦和玉米的NDF含量介于11%~16%,糙米的NDF含量最低,为6.54%;小麦麸和玉米皮的酸性洗涤纤维(ADF)含量分别为10.93%和16.28%,其余能量饲料原料的ADF含量均在5%以下。在所有能量饲料原料中,玉米的粗脂肪(EE)含量最高,为4.11%,糙米的EE含量最低,为1.16%。2)能量饲料原料的DCP含量介于38.49~130.29 g/kg,玉米皮、大麦和小麦麸的DCP含量较高,分别为130.29、117.50和114.16 g/kg,且3种原料之间差异不显著(P>0.05)。玉米的DCP含量最低,为38.49 g/kg,显著低于其他能量饲料原料的DCP含量(P<0.05)。糙米、小麦和高粱的DCP含量居中,数值接近(P>0.05)。高粱、糙米和玉米的消化能(DE)和代谢能(ME)较高,且3种原料之间差异不显著(P>0.05),其中高粱的DE和ME最高,分别为17.76和15.46 MJ/kg。小麦、大麦和玉米皮的DE和ME居中,小麦麸的DE和ME最低,分别为13.83和11.25 MJ/kg。综上所述,本研究所测半细毛羊常用能量饲料原料的营养成分部分数据与《中国饲料成分及营养价值表(2017年第28版)》中数值有一定差异,因此在实践中,为了精准配制饲粮,需要逐一准确测定各种饲料原料的营养成分含量。从DCP品质来说,玉米皮品质最佳,其次是大麦和小麦麸,之后是糙米、小麦和高粱,玉米品质最差;从能量饲料供能的角度来说,高粱、糙米和玉米品质较好,小麦、大麦和玉米皮较差,小麦麸最差。

本文引用格式

付霞杰, 段涛, 王思宇, 洪琼花, 申小云, 莫放, 张微 . 云南半细毛羊7种常用能量饲料可消化粗蛋白质和有效能的评价[J]. 动物营养学报, 2019 , 31(1) : 205 -213 . DOI: 10.3969/j.issn.1006-267x.2019.01.026

Abstract

The purpose of this experiment was to determine nutrient contents of seven common energy feeds (corn, wheat bran, wheat, barley, brown rice, corn bran, sorghum) for semi-fine-wool sheep by using the feed proximate analysis, and to measure digestible crude protein contents (DCP) contents and effective energy values by digestion and metabolism experiments combined with the substitution method. Sixteen Yunnan semi-fine-wool sheep with an average body weight of (55.61±5.33) kg were selected in the experiment and were randomly divided into 4 groups with 4 animals in each group. The experiment included two periods. There were eight diets including one basal diet and seven experimental diets, and four diets of them were fed in each period. Each period experiment lasted for 10 d including a 5-day preliminary trial period and a 5-day formal trial period. The results showed as follows:1) the crude protein (CP) content of wheat bran and corn bran was relatively high, which was about 16%, the CP content of sorghum, wheat, brown rice and barley was 10% to 14%, and the CP content of corn was the lowest, which was 8.63%. The crude fiber (CF) content of wheat bran and corn bran was 8.74% and 13.77%, respectively, and the CF content of other energy feeds was below 4%. The neutral detergent fiber (NDF) content of corn bran was the highest, which was 58.71%, followed by wheat bran, which was 36.37%, the NDF content of barley was 24.43%, the NDF content of sorghum, wheat and corn was 11% to 16%, and the NDF content of brown rice was the lowest, which was 6.54%. The acid detergent fiber (ADF) content of wheat bran and corn bran was 10.93% and 16.28%, respectively, and the ADF content of other energy feeds was below 5%. Among all energy feeds, the ether extract (EE) content of corn was the highest, which was 4.11%, and brown rice had the lowest EE content, which was 1.16%. 2) The DCP content of energy feeds was 38.49 to 130.29 g/kg. The DCP content of corn bran, barley and wheat bran were higher, which were 130.29, 117.50 and 114.16 g/kg, respectively, and the difference in DCP content of the three feeds was not significant (P>0.05). The DCP content of corn was the lowest, which was 38.49 g/kg, and was significantly lower than that of other energy feeds (P<0.05). The DCP contents of brown rice, wheat and sorghum were medium, and the values were close (P>0.05). The digestive energy (DE) and metabolic energy (ME) were higher in sorghum, brown rice and corn, and there was no significant difference among the three feeds (P>0.05), among which the highest DE and ME of sorghum were 17.76 and 15.46 MJ/kg, respectively. The DE and ME of wheat, barley and corn bran were medium, and the DE and ME of wheat bran were the lowest, which were 13.83 and 11.25 MJ/kg, respectively. In conclusion, the data about nutrient contents of common energy feeds for semi-fine-wool sheep are somewhat different from the values of Tables of Feed Composition and Nutritive Values in China (2017). Therefore, in practice, accurate determinations of nutrient contents of feeds must be performed one by one to precisely formulated diets. In terms of the quality of digestible crude protein, corn bran has the best quality, followed by barley and wheat bran, followed by brown rice, wheat and sorghum, and the quality of corn is the worst. From the perspective of energy quality of energy feeds, the quality of sorghum, brown rice and corn are higher, wheat, barley, and corn bran are poor, wheat bran is the worst.

参考文献

[1] 付霞杰,段涛,王思宇,等.7种半细毛羊常用饲料原料的营养价值评定[J].中国畜牧杂志,2017,53(10):70-74.

[2] 杨红远,洪琼花.国内外半细毛羊现状及前景分析[J].云南畜牧兽医,2011(2):29-32.

[3] 中华人民共和国国家统计局.中国统计年鉴[M].北京:中国统计出版社,2016.

[4] 赵江波,魏时来,马涛,等.应用套算法估测肉羊精饲料代谢能[J].动物营养学报,2016,28(4):1217-1224.

[5] 王菲.肉牛饲料有效能值预测模型的建立与评价[D].博士学位论文.北京:中国农业大学,2016.

[6] 李德勇.体外法评价肉牛饲料净蛋白质利用率和瘤胃降解率[D].博士学位论文.北京:中国农业大学,2016.

[7] 赵江波,魏时来,马涛,等.套算法用于估测肉用羊单一谷物饲料代谢能值及养分消化率的探索[J].畜牧兽医学报,2016,47(7):1405-1413.

[8] GALVANI D B,PIRES C C,KOZLOSKI G V,et al.Energy requirements of Texel crossbred lambs[J].Journal of Animal Science,2008,86(12):3480-3490.  

[9] 张丽英.饲料分析及饲料质量检测技术[M].3版.北京:中国农业大学出版社,2007.

[10] PELCHEN A,PETERS K J.Methane emissions from sheep[J].Small Ruminant Research,1998,27(2):137-150.  

[11] 刘德稳.生长猪常用七种饲料原料净能预测方程[D].博士学位论文.北京:中国农业大学,2014.

[12] ADEOLA O.Digestion and balance techniques in pigs[M]//LEWIS A J,SOUTHERN L L.Swine nutrition.2nd ed.Washington,D.C.:CRC Press,2001:906.

[13] 熊本海,罗清尧,周正奎,等.中国饲料成分及营养价值表(2017年第28版)制订说明[J].中国饲料,2017(21):31-41.

[14] 王成章,王恬.饲料学[M].2版.北京:中国农业出版社,2011.

[15] MORRISON I M.Changes in the lignin and hemicellulose concentrations of ten varieties of temperate grasses with increasing maturity[J].Grass and Forage Science,1980,35(4):287-393.  

[16] 许艳芬.山东省猪饲料原料的营养价值评定[D].硕士学位论文.泰安:山东农业大学,2013.

[17] 赵丽华,莫放,余汝华,等.收刈时间对玉米秸秆营养物质产量的影响[J].中国农学通报,2007,23(7):11-14.

[18] 陶春卫.反刍动物常用粗饲料营养价值评定及其有效能值预测模型的建立[D].硕士学位论文.大庆:黑龙江八一农垦大学,2009.

[19] 刘洁.肉用绵羊饲料代谢能与代谢蛋白质预测模型的研究[D].博士学位论文.北京:中国农业科学院,2012.

[20] ABATE A L,MAYER M.Prediction of the useful energy in tropical feeds from proximate composition and in vivo derived energetic contents 1.Metabolisable energy[J].Small Ruminant Research,1997,25(1):51-59.  

[21] 赵明明,马涛,马俊南,等.肉用绵羊常用粗饲料有效能值的预测与方程的建立[J].动物营养学报,2016,28(8):2385-2395.
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