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Diurnal and dietary impacts on estimating microbial protein flow from urinary purine derivative excretion in beef cattle

机译:牛牛中尿嘌呤衍生物排泄估算微生物蛋白质流动的昼夜和膳食影响

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摘要

Two experiments were conducted to determine the effects of diet composition and time of urine spot sampling on estimates of urinary purine derivative (PD) excretion. In Exp. 1, 116 individually fed crossbred heifers (407 ± 32 kg) were arranged in a randomized block design (82 d). Treatments were arranged in a 2 × 3 factorial design, with two urine spot sample collection times (0700 and 1700 hours; AM and PM) and three diets: 85% steam-flaked corn (SFC); 85% SFC + 1.5% urea (UREA); or 25% SFC, 30% wet corn gluten feed, and 30% corn bran (BYPROD). In Exp. 2, six ruminally and duodenally fistulated steers (474 ± 37 kg) were arranged in a replicated 3 × 3 Latin square design, with dietary treatments identical to Exp. 1 (63 d). Treatment diets were selected to result in varied amounts of microbial crude protein (MCP) in order to evaluate the accuracy of using estimates of urinary PD excretion to predict MCP. Urine spot samples were collected at 0700, 1200, 1700, and 2200 hours. No urine collection time × diet interactions occurred (P > 0.20) for any variable in either experiment. In Exp. 1, dry matter intake (DMI) was greatest with BYRPOD (10.40 kg/d) and lowest with SFC (7.90 kg/d; P < 0.05). Feed efficiencies were greatest for UREA (0.182) and least for SFC (0.141; P < 0.05). Urinary PD:creatinine (PD:C) ratio was greatest for BYPROD (1.25) and least for SFC (0.94; P < 0.05). Urine spot sampling time had a significant (P < 0.05) impact on PD:C, 1.03 for AM and 1.22 for PM samples. In Exp. 2, DMI was greater (P < 0.05) with BYPROD than with SFC and tended (P = 0.07) to be greater with BYPROD than with UREA. Ruminal pH was greatest for BYPROD (5.94; P < 0.05). Flow of MCP was 636, 829, and 1,056 g/d for SFC, UREA, and BYPROD, with BYPROD being greater (P < 0.05) than SFC and tending (P = 0.06) to be greater than UREA. Urinary PD:C was greater (P < 0.05) for BYPROD than SFC and tended (P = 0.09) to be greater for UREA than SFC. Urinary PD:C increased linearly (P < 0.05) with sampling time. Diets formulated to affect DMI and MCP flow resulted in differences in urinary PD excretion, and these results related well with MCP flow estimated from duodenal purines. Collecting spot samples of urine later in the day resulted in greater estimates of urinary PD excretion; purine and PD flows appear to increase with time after one morning feeding per day. This method is well suited to evaluating relative differences between treatments but should not be extrapolated to assume absolute values.
机译:进行了两个实验,以确定饮食组合物和尿嘌呤衍生物(PD)排泄的尿估计定点取样的时间的影响。在exp。 1,116头单独供给杂交小母牛(407±32千克)被安排在一个随机区组设计(82 d)。处理被布置成2×3因子设计,具有两个点尿样品收集时间(0700和1700小时; AM到PM)和三种饮食:85%蒸汽压片玉米(SFC); 85%SFC + 1.5%尿素(脲);或25%SFC,30%湿玉米麸质饲料,和30%的玉米麸(BYPROD)。在exp。 2,六个瘤胃和十二指肠瘘管阉牛(474±37公斤)被安排在一个复制的3×3拉丁方设计,与饮食处理相同浓淡1(63 d)。被选择的治疗饮食导致不同量的微生物粗蛋白质(MCP),以评价使用尿排泄PD的估计来预测MCP的准确性。尿液斑点样品在0700,1200,1700,和2200小时内收集。没有尿液收集时间×饮食相互作用发生(P> 0.20),用于在任一实验的任何变量。在exp。 1,干物质摄取量(DMI)是最大与BYRPOD(10.40公斤/ d)和最低使用SFC(7.90公斤/ d; P <0.05)。饲料效率为最大的尿素(0.182)和至少为SFC(0.141; P <0.05)。尿PD:肌酐(PD:C)之比为最大的为BYPROD(1.25)和至少为SFC(0.94; P <0.05)。尿点采样时间有显著(P <0.05)对PD的影响:C,1.03 AM和1.22 PM样品。在exp。 2,DMI了较大的与BYPROD(P <0.05)比用SFC并趋于(P = 0.07)为大于与BYPROD比尿素。瘤胃pH为最大为BYPROD(5.94; P <0.05)。 MCP的流量为636,829,和1056克/ d为SFC,尿素和BYPROD,与BYPROD是高于(P <0.05)高于SFC,呈(P = 0.06)为比尿素更大。尿PD:C是更大的(P <0.05),用于BYPROD比SFC并趋于(P = 0.09),以更大的尿素比SFC。尿PD:C与采样时间线性增加(P <0.05)。制定影响DMI和MCP饮食流动导致尿中排泄PD差异,并与MCP相关以及这些结果流从十二指肠嘌呤估计。收集尿液样本点在当天晚些时候导致尿排泄PD更大的估计;嘌呤和PD流出现每日的喂食后随时间而增加。这种方法非常适合于评估治疗之间的相对差异,但不应该被外推到假设绝对值。

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