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利用表型分布模型预测家畜生产性能。

Using phenotypic distribution models to predict livestock performance.

机构信息

Wageningen University & Research Animal Breeding and Genomics, PO Box 338, 6700 AH, Wageningen, The Netherlands.

International Livestock Research Institute, P. O. Box 5689, Addis Ababa, Ethiopia.

出版信息

Sci Rep. 2019 Oct 25;9(1):15371. doi: 10.1038/s41598-019-51910-6.

Abstract

Livestock production systems of the developing world use indigenous breeds that locally adapted to specific agro-ecologies. Introducing commercial breeds usually results in lower productivity than expected, as a result of unfavourable genotype by environment interaction. It is difficult to predict of how these commercial breeds will perform in different conditions encountered in e.g. sub-Saharan Africa. Here, we present a novel methodology to model performance, by using growth data from different chicken breeds that were tested in Ethiopia. The suitability of these commercial breeds was tested by predicting the response of body weight as a function of the environment across Ethiopia. Phenotype distribution models were built using machine learning algorithms to make predictions of weight in the local environmental conditions based on the productivity for the breed. Based on the predicted body weight, breeds were assigned as being most suitable in a given agro-ecology or region. We identified the most important environmental variables that explained the variation in body weight across agro-ecologies for each of the breeds. Our results highlight the importance of acknowledging the role of environment in predicting productivity in scavenging chicken production systems. The use of phenotype distribution models in livestock breeding is recommended to develop breeds that will better fit in their intended production environment.

摘要

发展中国家的畜牧业生产系统使用当地适应特定农业生态环境的本土品种。由于基因型与环境相互作用不利,引入商业品种通常会导致生产力低于预期。很难预测这些商业品种在例如撒哈拉以南非洲遇到的不同条件下会如何表现。在这里,我们提出了一种新的方法来通过使用在埃塞俄比亚进行测试的不同鸡品种的生长数据来模拟性能。通过预测体重对埃塞俄比亚各地环境的响应来测试这些商业品种的适用性。使用机器学习算法构建表型分布模型,根据品种的生产力,在当地环境条件下对体重进行预测。基于预测的体重,根据给定的农业生态或地区将品种分配为最适合的品种。我们确定了对于每个品种,解释体重在农业生态系统中变化的最重要的环境变量。我们的研究结果强调了在预测觅食鸡生产系统中的生产力时,承认环境作用的重要性。建议在畜牧业中使用表型分布模型来培育更适合其预期生产环境的品种。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d331/6814727/8a8d42d2a66a/41598_2019_51910_Fig1_HTML.jpg

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