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昆虫媒介与植物病原体之间的相互作用跨越了寄生-共生连续统。

Interactions between insect vectors and plant pathogens span the parasitism-mutualism continuum.

机构信息

Department of Biology, University of Oxford, Oxford OX1 2JD, UK.

出版信息

Biol Lett. 2023 Mar;19(3):20220453. doi: 10.1098/rsbl.2022.0453. Epub 2023 Mar 8.


DOI:10.1098/rsbl.2022.0453
PMID:36883313
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9993222/
Abstract

Agricultural crops infected with vector-borne pathogens can suffer severe negative consequences, but the extent to which phytopathogens affect the fitness of their vector hosts remains unclear. Evolutionary theory predicts that selection on vector-borne pathogens will favour low virulence or mutualistic phenotypes in the vector, traits facilitating effective transmission between plant hosts. Here, we use a multivariate meta-analytic approach on 115 effect sizes across 34 unique plant-vector-pathogen systems to quantify the overall effect of phytopathogens on vector host fitness. In support of theoretical models, we report that phytopathogens overall have a neutral fitness effect on vector hosts. However, the range of fitness outcomes is diverse and span the parasitism-mutualism continuum. We found no evidence that various transmission strategies, or direct effects and indirect (plant-mediated) effects, of phytopathogens have divergent fitness outcomes for the vector. Our finding emphasizes diversity in tripartite interactions and the necessity for pathosystem-specific approaches to vector control.

摘要

受病媒传播病原体感染的农业作物可能会遭受严重的负面影响,但植物病原体在多大程度上影响其病媒宿主的适应性仍不清楚。进化理论预测,病媒传播病原体的选择将有利于病媒中低毒力或互利表型的出现,这些特征有利于在植物宿主之间进行有效的传播。在这里,我们使用多元荟萃分析方法对 34 个独特的植物-病媒-病原体系统中的 115 个效应大小进行了量化,以确定植物病原体对病媒宿主适应性的总体影响。支持理论模型,我们报告说,植物病原体对病媒宿主的适应性总体上没有影响。然而,适应度结果的范围是多样的,跨越了寄生-互利连续体。我们没有发现证据表明,各种病原体的传播策略,或直接和间接(通过植物介导的)效应,对病媒有不同的适应度结果。我们的发现强调了三方相互作用的多样性,以及针对病媒控制的特定病理系统方法的必要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c5e/9993222/c999ab331a65/rsbl20220453f02.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c5e/9993222/ddb388e782d7/rsbl20220453f01.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c5e/9993222/c999ab331a65/rsbl20220453f02.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c5e/9993222/ddb388e782d7/rsbl20220453f01.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c5e/9993222/c999ab331a65/rsbl20220453f02.jpg

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J Fungi (Basel). 2025-4-9

[2]
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[3]
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本文引用的文献

[1]
Effector-mediated plant-virus-vector interactions.

Plant Cell. 2022-4-26

[2]
Epidemiological and ecological consequences of virus manipulation of host and vector in plant virus transmission.

PLoS Comput Biol. 2021-12

[3]
Spotlight on the Roles of Whitefly Effectors in Insect-Plant Interactions.

Front Plant Sci. 2021-7-2

[4]
Microbial evolution and transitions along the parasite-mutualist continuum.

Nat Rev Microbiol. 2021-10

[5]
Specific and Spillover Effects on Vectors Following Infection of Two RNA Viruses in Pepper Plants.

Insects. 2020-9-5

[6]
Insect-borne plant pathogenic bacteria: getting a ride goes beyond physical contact.

Curr Opin Insect Sci. 2015-6

[7]
Modelling Vector Transmission and Epidemiology of Co-Infecting Plant Viruses.

Viruses. 2019-12-13

[8]
Maize Iranian mosaic virus (family Rhabdoviridae) improves biological traits of its vector Laodelphax striatellus.

Arch Virol. 2019-11-27

[9]
Exposure to watermelon bud necrosis virus and groundnut bud necrosis virus alters the life history traits of their vector, Thrips palmi (Thysanoptera: Thripidae).

Arch Virol. 2019-8-22

[10]
A non-persistent aphid-transmitted Potyvirus differentially alters the vector and non-vector biology through host plant quality manipulation.

Sci Rep. 2019-2-21

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