Jodie Jacobs, Anne Nakamoto, Mira Mastoras, Hailey Loucks, Cade Mirchandani, Lily Karim, Gabriel Penunuri, Ciara Wanket, Shelbi L Russell
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引用次数: 0
摘要
沃尔巴克氏菌是一种细胞内的𝛼-蛋白细菌,通常感染节肢动物和丝虫线虫。不同的沃尔巴克氏菌菌株能够对许多宿主进行广泛的调控,并调节宿主的细胞分化,从而影响宿主的繁殖。大多数这些表型的遗传基础尚不清楚。来自新热带果蝇 Willistoni 的 w Wil 菌株对宿主生殖细胞的亲和力明显高于对体细胞的亲和力。利用这一特性,可以了解沃尔巴克氏体如何影响宿主种系,并在野外控制宿主种群。为了进一步将该菌株用于生物和生物医学研究,我们对从宿主细胞培养细胞中分离出来的 w Wil 菌株进行了基因组测序。在此,我们首次对 Wolbachia 内共生菌株 w Wil 进行了高质量的纳米孔组装。我们的组装结果是一个 1.27 Mb 的环状基因组,BUSCO 完整性评分为 99.7%。与其他昆虫相关的沃尔巴奇菌株一致,比较基因组分析表明,相对于黑腹果蝇的近亲 wMel 菌株,wWil 的基因组具有高度镶嵌性。
Complete de novo assembly of Wolbachia endosymbiont of Drosophila willistoni using long-read genome sequencing.
Wolbachia is an obligate intracellular α-proteobacterium which commonly infects arthropods and filarial nematodes. Different strains of Wolbachia are capable of a wide range of regulatory manipulations in many hosts and modulate host cellular differentiation to influence host reproduction. The genetic basis for the majority of these phenotypes is unknown. The wWil strain from the neotropical fruit fly, Drosophila willistoni, exhibits a remarkably high affinity for host germline-derived cells relative to the soma. This trait could be leveraged for understanding how Wolbachia influences the host germline and for controlling host populations in the field. To further the use of this strain in biological and biomedical research, we sequenced the genome of the wWil strain isolated from host cell culture cells. Here, we present the first high quality nanopore assembly of wWil, the Wolbachia endosymbiont of D. willistoni. Our assembly resulted in a circular genome of 1.27 Mb with a BUSCO completeness score of 99.7%. Consistent with other insect-associated Wolbachia strains, comparative genomic analysis revealed that wWil has a highly mosaic genome relative to the closely related wMel strain from Drosophila melanogaster.