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从生态数据中检测种间大型寄生虫相互作用:模式与过程。

Detecting interspecific macroparasite interactions from ecological data: patterns and process.

机构信息

School of Biological Sciences,University of Liverpool, Crown Street, Liverpool, L69 7ZB, UK.

出版信息

Ecol Lett. 2010 May;13(5):606-15. doi: 10.1111/j.1461-0248.2010.01458.x.

Abstract

There is great interest in the occurrence and consequences of interspecific interactions among co-infecting parasites. However, the extent to which interactions occur is unknown, because there are no validated methods for their detection. We developed a model that generated abundance data for two interacting macroparasite (e.g., helminth) species, and challenged the data with various approaches to determine whether they could detect the underlying interactions. Current approaches performed poorly - either suggesting there was no interaction when, in reality, there was a strong interaction occurring, or inferring the presence of an interaction when there was none. We suggest the novel application of a generalized linear mixed modelling (GLMM)-based approach, which we show to be more reliable than current approaches, even when infection rates of both parasites are correlated (e.g., via a shared transmission route). We suggest that the lack of clarity regarding the presence or absence of interactions in natural systems may be largely attributed to the unreliable nature of existing methods for detecting them. However, application of the GLMM approach may provide a more robust method of detection for these potentially important interspecific interactions from ecological data.

摘要

人们对共感染寄生虫之间的种间相互作用的发生和后果非常感兴趣。然而,由于目前还没有经过验证的检测方法,因此尚不清楚这种相互作用发生的程度。我们开发了一种模型,可以生成两种相互作用的大型寄生虫(例如,寄生虫)物种的丰度数据,并通过各种方法对数据进行了挑战,以确定它们是否可以检测到潜在的相互作用。目前的方法表现不佳 - 要么暗示没有相互作用,而实际上却存在强烈的相互作用,要么推断不存在相互作用,而实际上却存在相互作用。我们建议应用一种基于广义线性混合模型(GLMM)的新方法,我们发现该方法即使在两种寄生虫的感染率相关(例如,通过共享传播途径)时,也比现有方法更可靠。我们认为,在自然系统中,关于相互作用是否存在的不确定性在很大程度上归因于目前检测相互作用的方法不可靠。但是,GLMM 方法的应用可能为从生态数据中检测这些潜在重要的种间相互作用提供一种更可靠的方法。

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