Functional redundancy and niche specialization in honeybee and Varroa microbiomes.

IF 2.3 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Štefánia Skičková, Myriam Kratou, Karolína Svobodová, Apolline Maitre, Lianet Abuin-Denis, Alejandra Wu-Chuang, Dasiel Obregón, Mourad Ben Said, Viktória Majláthová, Alena Krejčí, Alejandro Cabezas-Cruz
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Abstract

The honeybee (Apis mellifera) is a key pollinator critical to global agriculture, facing threats from various stressors, including the ectoparasitic Varroa mite (Varroa destructor). Previous studies have identified shared bacteria between Varroa mites and honeybees, yet it remains unclear if these bacteria assemble similarly in both species. This study builds on existing knowledge by investigating co-occurrence patterns in the microbiomes of both Varroa mites and honeybees, shedding light on potential interactions. Leveraging 16S rRNA datasets, we conducted co-occurrence network analyses, explored Core Association Networks (CAN) and assess network robustness. Comparative network analyses revealed structural differences between honeybee and mite microbiomes, along with shared core features and microbial motifs. The mite network exhibited lower robustness, suggesting less resistance to taxa extension compared to honeybees. Furthermore, analyses of predicted functional profiling and taxa contribution revealed that common central pathways in the metabolic networks have different taxa contributing to Varroa mites and honeybee microbiomes. The results show that while both microbial systems exhibit functional redundancy, in which different taxa contribute to the functional stability and resilience of the ecosystem, there is evidence for niche specialization resulting in unique contributions to specific pathways in each part of this host-parasite system. The specificity of taxa contribution to key pathways offers targeted approaches to Varroa microbiome management and preserving honeybee microbiome. Our findings provide valuable insights into microbial interactions, aiding farmers and beekeepers in maintaining healthy and resilient bee colonies amid increasing Varroa mite infestations.

Abstract Image

蜜蜂和 Varroa 微生物群的功能冗余和生态位特化。
蜜蜂(Apis mellifera)是对全球农业至关重要的重要授粉动物,面临着各种压力源的威胁,其中包括外寄生的瓦罗阿螨(Varroa destructor)。以前的研究已经发现了瓦氏螨和蜜蜂之间的共用细菌,但仍不清楚这些细菌是否在这两个物种中以类似方式聚集。本研究以现有知识为基础,调查了瓦氏螨和蜜蜂微生物组中的共生模式,揭示了潜在的相互作用。利用 16S rRNA 数据集,我们进行了共现网络分析,探索了核心关联网络(CAN),并评估了网络的稳健性。比较网络分析揭示了蜜蜂和螨虫微生物组之间的结构差异,以及共同的核心特征和微生物主题。螨虫网络表现出较低的稳健性,表明与蜜蜂相比,螨虫网络对类群扩展的抵抗力较弱。此外,对预测的功能剖析和类群贡献的分析表明,代谢网络中的共同中心通路在瓦氏螨和蜜蜂微生物组中有不同的类群贡献。研究结果表明,虽然这两个微生物系统都表现出功能冗余,即不同的类群对生态系统的功能稳定性和恢复力做出了贡献,但也有证据表明,在这个宿主-寄生虫系统的每一部分中,生态位特化导致了对特定通路的独特贡献。分类群对关键通路的特异性为瓦鲁阿微生物组的管理和蜜蜂微生物组的保护提供了有针对性的方法。我们的研究结果为微生物之间的相互作用提供了宝贵的见解,有助于农民和养蜂人在瓦罗阿螨侵扰日益严重的情况下维持健康和有复原力的蜂群。
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来源期刊
International Microbiology
International Microbiology 生物-生物工程与应用微生物
CiteScore
5.50
自引率
3.20%
发文量
67
审稿时长
3 months
期刊介绍: International Microbiology publishes information on basic and applied microbiology for a worldwide readership. The journal publishes articles and short reviews based on original research, articles about microbiologists and their work and questions related to the history and sociology of this science. Also offered are perspectives, opinion, book reviews and editorials. A distinguishing feature of International Microbiology is its broadening of the term microbiology to include eukaryotic microorganisms.
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