首页> 外文期刊>Journal of Animal Science >Cell biology symposium: genetics of feed efficiency in dairy and beef cattle.
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Cell biology symposium: genetics of feed efficiency in dairy and beef cattle.

机译:细胞生物学专题讨论会:奶牛和肉牛饲料效率的遗传学。

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Increasing food production for the growing human population off a constraining land base will require greater efficiency of production. Genetic improvement of feed efficiency in cattle, which is cumulative and permanent, is one likely vehicle to achieving efficiency gains. The objective of this review is to summarize genetic parameters for feed efficiency traits in dairy and beef cattle and also to address some of the misconceptions associated with feed efficiency in these sectors, as well as discuss the potential use of feed efficiency in breeding programs. A meta-analysis of up to 39 scientific publications in growing cattle clearly showed that genetic variation in feed efficiency exists with a pooled heritability for residual feed intake (RFI) and feed conversion efficiency of 0.33+or-0.01 (range of 0.07 to 0.62) and 0.23+or-0.01 (range of 0.06 to 0.46), respectively. Heritability estimates for feed efficiency in cows were lower; a meta-analysis of up to 11 estimates revealed heritability estimates for gross feed efficiency and RFI of 0.06+or-0.010 and 0.04+or-0.008, respectively. Meta-analysis of genetic correlations between feed intake, feed efficiency and other performance traits are presented, and selection index theory is used to calculate the proportion of genetic variation in feed intake that can be explained by easy to measure, and often already collected, data. A large proportion of the genetic variation in feed intake could be explained in both growing animals and lactating animals using up to 5 predictor traits, including BW, growth rate, milk yield, body composition, and linear type traits reflecting body size and muscularity. Knowledge of genetic merit for feed intake can be used, along with estimates of genetic merit for energy sinks, to calculate genetic merit for feed efficiency. Therefore, the marginal benefit of collecting actual feed intake data, using the genetic parameters used in this study, appears to be low. There is now sufficient information available to develop a road map on how best to direct research to ensure long-term food security for a growing human population. Gaps in knowledge are identified here, and possibilities to address these gaps are discussed.
机译:为了在有限的土地上增加人口的增长,粮食生产将需要更高的生产效率。遗传改良牛的饲料效率是永久性的,是提高效率的一种可能的手段。这篇综述的目的是总结奶牛和肉牛饲料效率性状的遗传参数,并解决与这些部门中饲料效率相关的一些误解,并讨论饲料效率在育种计划中的潜在用途。对多达39篇关于生长中的牛的科学出版物的荟萃分析清楚地表明,饲料效率存在遗传变异,剩余饲料摄入量(RFI)的遗传力集中,饲料转化效率为0.33+或-0.01(范围为0.07至0.62)和0.23+或-0.01(范围为0.06至0.46)。奶牛饲料效率的遗传估计值较低;对多达11个估算值的荟萃分析显示,总饲料效率和RFI的遗传力估算值分别为0.06+或-0.010和0.04+或-0.008。提出了采食量,饲料效率和其他性能特征之间遗传相关性的荟萃分析,并使用选择指数理论计算了采食量中遗传变异的比例,这可以通过易于测量且通常已经收集的数据来解释。 。可以在成年动物和哺乳动物中使用多达5种预测指标来解释饲料摄入量的大部分遗传变异,这些指标包括体重,生长速度,产奶量,身体成分以及反映体型和肌肉的线性型特征。可以将饲料摄入的遗传价值知识与能量汇的遗传价值估算一起用于计算饲料效率的遗传价值。因此,使用本研究中使用的遗传参数收集实际采食量数据的边际收益似乎很低。现在有足够的信息来制定关于如何最好地指导研究以确保不断增长的人口的长期粮食安全的路线图。这里指出了知识的差距,并讨论了解决这些差距的可能性。

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