The Endosymbiont Consortia of Two Cixiidae Planthoppers Reveal an Ancient Symbiosis With 'Candidatus Mirabilia Symbiotica'.

IF 2.7 4区 生物学 Q2 ENVIRONMENTAL SCIENCES
Jessica Dittmer, Mathieu Mahillon, Christophe Debonneville, Franco Faoro, Xavier Foissac, Olivier Schumpp, Bessem Chouaia
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Abstract

Insects of the suborder Auchenorrhyncha harbour multiple ancient endosymbionts that jointly produce essential nutrients lacking from the host's diet. Compared to cicadas, leafhoppers, and spittlebugs, our understanding of the multipartite symbioses among planthoppers, an extremely diverse insect group, is still very limited. Herein, we assembled the genomes of the primary endosymbionts of two planthopper species from the Cixiidae family, Cixius wagneri and Pentastiridius leporinus, both vectors of phytopathogenic Arsenophonus in Europe. Each species harboured a different tripartite endosymbiont consortium: while P. leporinus carried the well-known combination 'Candidatus Karelsulcia muelleri', 'Ca. Vidania fulgoroideae', and 'Ca. Purcelliella pentastirinorum', C. wagneri harboured a yet unknown Gammaproteobacterium in addition to Karelsulcia and Vidania. This new endosymbiont 'Ca. Mirabilia symbiotica' is likely much older than Purcelliella, considering its extremely reduced genome. In both species, Karelsulcia and Vidania jointly produce the 10 essential amino acids, whereas Purcelliella and Mirabilia provide the non-essential amino acid cysteine and slightly different gene sets encoding B vitamins. Our findings confirm the functional stability of multipartite planthopper endosymbiont consortia despite changing partners over evolutionary time. In addition, we describe a new Rickettsia strain from the Meloidae group colonising P. leporinus, highlighting the diversity of bacterial endosymbionts associated with planthoppers.

两种慈竹科飞虱的内共生体揭示了与“Mirabilia Symbiotica候选者”的古老共生关系。
昆虫的亚目Auchenorrhyncha有多种古老的内共生体,共同产生必需的营养缺乏的宿主的饮食。与蝉、叶蝉和飞虱相比,我们对飞虱这种极其多样化的昆虫群体之间的多重共生关系的了解仍然非常有限。在此,我们组装了来自Cixiidae科的两种飞虱(Cixius wagneri和Pentastiridius leporinus)的主要内共生体基因组,这两种飞虱都是植物致病性Arsenophonus的载体。每个物种都有一个不同的三方内共生联合体:P. leporinus携带着众所周知的组合“Candidatus Karelsulcia muelleri”,“Ca. Vidania fulgoroideae”和“Ca. purcellliella pentastirinorum”,C. wagneri除了Karelsulcia和Vidania外,还携带着一种未知的γ变形菌。这种新的内共生菌“Mirabilia symbiotica”可能比purcellella要古老得多,因为它的基因组极度减少。在这两个物种中,Karelsulcia和Vidania共同产生10种必需氨基酸,而Purcelliella和Mirabilia提供非必需氨基酸半胱氨酸和编码B族维生素的略有不同的基因集。我们的研究结果证实了多部飞虱内共生联合体的功能稳定性,尽管在进化过程中改变了合作伙伴。此外,我们还描述了一种新的立克次体菌株,该菌株来自于棉铃虫科,定殖于leporinus,突出了与飞虱相关的细菌内共生体的多样性。
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来源期刊
Environmental Microbiology Reports
Environmental Microbiology Reports ENVIRONMENTAL SCIENCES-MICROBIOLOGY
CiteScore
6.00
自引率
3.00%
发文量
91
审稿时长
3.0 months
期刊介绍: The journal is identical in scope to Environmental Microbiology, shares the same editorial team and submission site, and will apply the same high level acceptance criteria. The two journals will be mutually supportive and evolve side-by-side. Environmental Microbiology Reports provides a high profile vehicle for publication of the most innovative, original and rigorous research in the field. The scope of the Journal encompasses the diversity of current research on microbial processes in the environment, microbial communities, interactions and evolution and includes, but is not limited to, the following: the structure, activities and communal behaviour of microbial communities microbial community genetics and evolutionary processes microbial symbioses, microbial interactions and interactions with plants, animals and abiotic factors microbes in the tree of life, microbial diversification and evolution population biology and clonal structure microbial metabolic and structural diversity microbial physiology, growth and survival microbes and surfaces, adhesion and biofouling responses to environmental signals and stress factors modelling and theory development pollution microbiology extremophiles and life in extreme and unusual little-explored habitats element cycles and biogeochemical processes, primary and secondary production microbes in a changing world, microbially-influenced global changes evolution and diversity of archaeal and bacterial viruses new technological developments in microbial ecology and evolution, in particular for the study of activities of microbial communities, non-culturable microorganisms and emerging pathogens.
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