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模拟进化谱系的速度并预测扩散模式。

Modeling the velocity of evolving lineages and predicting dispersal patterns.

作者信息

Bastide Paul, Rocu Pauline, Wirtz Johannes, Hassler Gabriel W, Chevenet François, Fargette Denis, Suchard Marc A, Dellicour Simon, Lemey Philippe, Guindon Stéphane

机构信息

IMAG, Université de Montpellier, CNRS, Montpellier, France.

Université Paris Cité, CNRS, MAP5, F-75006 Paris, France.

出版信息

bioRxiv. 2024 Oct 28:2024.06.06.597755. doi: 10.1101/2024.06.06.597755.

Abstract

Accurate estimation of the dispersal velocity or speed of evolving organisms is no mean feat. In fact, existing probabilistic models in phylogeography or spatial population genetics generally do not provide an adequate framework to define velocity in a relevant manner. For instance, the very concept of instantaneous speed simply does not exist under one of the most popular approaches that models the evolution of spatial coordinates as Brownian trajectories running along a phylogeny (Lemey et al., 2010). Here, we introduce a new family of models - the so-called "Phylogenetic Integrated Velocity" (PIV) models - that use Gaussian processes to explicitly model the velocity of evolving lineages instead of focusing on the fluctuation of spatial coordinates over time. We describe the properties of these models and show an increased accuracy of velocity estimates compared to previous approaches. Analyses of West Nile virus data in the U.S.A. indicate that PIV models provide sensible predictions of the dispersal of evolving pathogens at a one-year time horizon. These results demonstrate the feasibility and relevance of predictive phylogeography in monitoring epidemics in time and space.

摘要

准确估计进化生物体的扩散速度并非易事。事实上,系统发育地理学或空间种群遗传学中现有的概率模型通常无法提供一个以相关方式定义速度的适当框架。例如,在将空间坐标的进化建模为沿系统发育的布朗轨迹的最流行方法之一中,瞬时速度的概念根本不存在(Lemey等人,2010年)。在这里,我们引入了一个新的模型家族——所谓的“系统发育综合速度”(PIV)模型——该模型使用高斯过程来明确模拟进化谱系的速度,而不是关注空间坐标随时间的波动。我们描述了这些模型的特性,并表明与以前的方法相比,速度估计的准确性有所提高。对美国西尼罗河病毒数据的分析表明,PIV模型在一年的时间范围内对进化病原体的扩散提供了合理的预测。这些结果证明了预测系统发育地理学在时空监测流行病方面的可行性和相关性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7de8/11528504/4b8869885b21/nihpp-2024.06.06.597755v2-f0001.jpg

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