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Disentangling the relative roles of resource acquisition and allocation on animal feed efficiency: insights from a dairy cow model

机译:阐明资源获取和分配对动物饲料效率的相对作用:来自奶牛模型的见解

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摘要

Background: Feed efficiency of farm animals has greatly improved through genetic selection for production. Today, we are faced with the limits of our ability to predict the effect of selection on feed efficiency, partly because the relative importance of the components of this complex phenotype changes across environments. Thus, we developed a dairy cow model that incorporates the dynamic interplay between life functions and evaluated its behaviour with a global sensitivity analysis on two definitions of feed efficiency. A key model feature is to consider feed efficiency as the result of two processes, acquisition and allocation of resources. Acquisition encapsulates intake and digestion, and allocation encapsulates partitioning rules between physiological functions. The model generates genetically-driven trajectories of energy acquisition and allocation, with four genetic-scaling parameters controlling these processes. Model sensitivity to these parameters was assessed with a complete factorial design.Results: Acquisition and allocation had contrasting effects on feed efficiency (ratio between energy in milk and energy acquired from the environment). When measured over a lactation period, feed efficiency was increased by increasing allocation to lactation. However, at the lifetime level, efficiency was increased by decreasing allocation to growth and increasing lactation acquisition. While there is a strong linear increase in feed efficiency with more allocation to lactation within a lactation cycle, our results suggest that there is an optimal level of allocation to lactation beyond which increasing allocation to lactation negatively affects lifetime feed efficiency.Conclusions: We developed a model to predict lactation and lifetime feed efficiency and show that breaking-down feed conversion into acquisition and allocation, and introducing genetically-driven trajectories that control these mechanisms, permitted quantification of their relative roles on feed efficiency. The life stage at which feed efficiency is evaluated appears to be a key aspect for selection. In this model, body reserves are also a key component in the prediction of lifetime feed efficiency since they integrate the feedback of acquisition and allocation on survival and reproduction. This modelling approach provided new insights into the processes that underpin lifetime feed efficiency in dairy cows.
机译:背景:通过遗传选择生产方式,农场动物的饲料效率大大提高。今天,我们在预测选择对饲料效率的影响方面面临能力的局限,部分原因是这种复杂表型的组成部分的相对重要性在整个环境中都会发生变化。因此,我们开发了包含生命功能之间动态相互作用的奶牛模型,并通过对饲料效率的两种定义进行全局敏感性分析来评估其行为。模型的关键特征是将饲料效率视为资源获取和分配两个过程的结果。采集封装摄入和消化,而分配封装生理功能之间的分配规则。该模型生成能量获取和分配的遗传驱动轨迹,并通过四个遗传缩放参数来控制这些过程。结果:采集和分配对饲料效率(牛奶中的能量与从环境中获得的能量之间的比率)产生了相反的影响。在泌乳期进行测量时,通过增加对泌乳的分配可以提高饲料效率。但是,在生命周期中,通过减少对生长的分配和增加泌乳的获取来提高效率。虽然在泌乳周期内饲料效率有很强的线性增长并有更多的分配给泌乳,但我们的结果表明,有一个最佳的泌乳分配水平,超过此水平,对泌乳的分配增加会对终生饲料效率产生负面影响。预测泌乳和终生饲料效率的模型,并显示将饲料转化为获取和分配的分解,并引入控制这些机制的遗传驱动轨迹,可以量化它们对饲料效率的相对作用。评估饲料效率的生命周期似乎是选择的关键方面。在此模型中,身体储备也是预测终生饲料效率的关键组成部分,因为它们结合了对生存和繁殖的获取和分配反馈。这种建模方法提供了新的见解,从而为奶牛终生饲料效率提供了基础。

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