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噬菌体的丧失和蚜虫防御共生关系的破裂。

Phage loss and the breakdown of a defensive symbiosis in aphids.

机构信息

Department of Entomology, University of Georgia, Athens, GA 30602, USA.

出版信息

Proc Biol Sci. 2013 Jan 22;280(1751):20122103. doi: 10.1098/rspb.2012.2103.

Abstract

Terrestrial arthropods are often infected with heritable bacterial symbionts, which may themselves be infected by bacteriophages. However, what role, if any, bacteriophages play in the regulation and maintenance of insect-bacteria symbioses is largely unknown. Infection of the aphid Acyrthosiphon pisum by the bacterial symbiont Hamiltonella defensa confers protection against parasitoid wasps, but only when H. defensa is itself infected by the phage A. pisum secondary endosymbiont (APSE). Here, we use a controlled genetic background and correlation-based assays to show that loss of APSE is associated with up to sevenfold increases in the intra-aphid abundance of H. defensa. APSE loss is also associated with severe deleterious effects on aphid fitness: aphids infected with H. defensa lacking APSE have a significantly delayed onset of reproduction, lower weight at adulthood and half as many total offspring as aphids infected with phage-harbouring H. defensa, indicating that phage loss can rapidly lead to the breakdown of the defensive symbiosis. Our results overall indicate that bacteriophages play critical roles in both aphid defence and the maintenance of heritable symbiosis.

摘要

陆生节肢动物通常会感染具有遗传性的细菌共生体,而这些共生体本身可能会被噬菌体感染。然而,噬菌体在调节和维持昆虫-细菌共生关系方面发挥了何种作用(如果有作用的话),在很大程度上仍是未知的。蚜虫 Acyrthosiphon pisum 被细菌共生体 Hamiltonella defensa 感染后,会对寄生蜂产生抗性,但只有当 H. defensa 本身被噬菌体 A. pisum 次级内共生体(APSE)感染时才会产生这种抗性。在这里,我们使用受控遗传背景和基于相关性的检测方法表明,APSE 的缺失与 H. defensa 在蚜虫体内的丰度增加了高达七倍有关。APSE 的缺失也与蚜虫适应性的严重有害影响有关:感染缺乏 APSE 的 H. defensa 的蚜虫,其繁殖开始时间明显延迟,成虫体重降低,总后代数量只有感染携带噬菌体的 H. defensa 的蚜虫的一半,这表明噬菌体的缺失会迅速导致防御共生关系的破裂。总的来说,我们的结果表明,噬菌体在蚜虫防御和遗传性共生关系的维持方面都发挥了关键作用。

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