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测量不同人群间的遗传多样性。

Measuring genetic diversity across populations.

作者信息

Abhari Niloufar, Colijn Caroline, Mooers Arne, Tupper Paul

机构信息

Department of Mathematics, Simon Fraser University, Burnaby, BC, Canada.

Department of Biological Sciences, Simon Fraser University, Burnaby, BC, Canada.

出版信息

PLoS Comput Biol. 2024 Dec 4;20(12):e1012651. doi: 10.1371/journal.pcbi.1012651. eCollection 2024 Dec.

Abstract

Diversity plays an important role in various domains, including conservation, whether it describes diversity within a population or diversity over a set of species. While various strategies for measuring among-species diversity have emerged (e.g. Phylogenetic Diversity (PD), Split System Diversity (SSD) and entropy-based methods), extensions to populations are rare. An understudied problem is how to assess the diversity of a collection of populations where each has its own internal diversity. Relying solely on measures that treat each population as a monomorphic lineage (like a species) can be misleading. To address this problem, we present four population-level diversity assessment approaches: Pooling, Averaging, Pairwise Differencing, and Fixing. These approaches can be used to extend any diversity measure that is primarily defined for a group of individuals to a collection of populations. We then apply the approaches to two measures of diversity that have been used in conservation-Heterozygosity (Het) and Split System Diversity (SSD)-across a dataset comprising SNP data for 50 anadromous Atlantic salmon populations. We investigate agreement and disagreement between these measures of diversity when used to identify optimal sets of populations for conservation, on both the observed data, and randomized and simulated datasets. The similarity and differences of the maximum-diversity sets as well as the pairwise correlations among our proposed measures emphasize the need to clearly define what aspects of biodiversity we aim to both measure and optimize, to ensure meaningful and effective conservation decisions.

摘要

多样性在包括保护生物学在内的各个领域都发挥着重要作用,无论它描述的是种群内部的多样性还是一组物种间的多样性。虽然已经出现了各种测量物种间多样性的策略(例如系统发育多样性(PD)、分裂系统多样性(SSD)和基于熵的方法),但针对种群多样性的扩展却很少见。一个尚未得到充分研究的问题是如何评估一组种群的多样性,其中每个种群都有其自身的内部多样性。仅依靠将每个种群视为单态谱系(如一个物种)的测量方法可能会产生误导。为了解决这个问题,我们提出了四种种群水平的多样性评估方法:合并法、平均法、成对差分法和固定法。这些方法可用于将任何主要为一组个体定义的多样性测量方法扩展到一组种群。然后,我们将这些方法应用于保护生物学中使用的两种多样性测量方法——杂合度(Het)和分裂系统多样性(SSD),数据集包含50个溯河产卵大西洋鲑鱼种群的SNP数据。我们在观察到的数据以及随机和模拟数据集上,研究了这些多样性测量方法在用于确定保护的最优种群集时的一致性和不一致性。最大多样性集的相似性和差异以及我们提出的测量方法之间的成对相关性强调了明确界定我们旨在测量和优化的生物多样性的哪些方面的必要性,以确保做出有意义和有效的保护决策。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/308e/11649088/676728755327/pcbi.1012651.g001.jpg

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