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Macaluso, K. R.

Publications and source records attributed to Macaluso, K. R..

2 recordsLinked to original sources

Evolution of Wolbachia Mutualism and Reproductive Parasitism: Insight from Two Novel Strains that Co-infect Cat Fleas

Wolbachiae are obligate intracellular bacteria that infect arthropods and certain nematodes. Usually maternally inherited, they may provision nutrients to (mutualism) or alter sexual biology of (reproductive parasitism) their invertebrate hosts. We report the assembly of closed genomes for two novel wolbachiae, wCfeT and wCfeJ, found co-infecting cat fleas (Ctenocephalides felis) of the Elward Laboratory colony (Soquel, CA). wCfeT is basal to nearly all described Wolbachia supergroups, while wCfeJ is related to supergroups C, D and F. Both genomes contain laterally transferred genes that inform on the evolution of Wolbachia host associations. wCfeT carries the Biotin synthesis Operon of Obligate intracellular Microbes (BOOM); our analyses reveal five independent acquisitions of BOOM across the Wolbachia tree, indicating parallel evolution towards mutualism. Alternately, wCfeJ harbors a toxin-antidote operon analogous to the wPip cinAB operon recently characterized as an inducer of cytoplasmic incompatibility (CI) in flies. wCfeJ cinB and immediate-5 end genes are syntenic to large modular toxins encoded in CI-like operons of certain Wolbachia strains and Rickettsia species, signifying that CI toxins streamline by fission of larger toxins. Remarkably, the C. felis genome itself contains two CI-like antidote genes, divergent from wCfeJ cinA, revealing episodic reproductive parasitism in cat fleas and evidencing mobility of CI loci independent of WO-phage. Additional screening revealed predominant co-infection (wCfeT/wCfeJ) amongst C. felis colonies, though occasionally wCfeJ singly infects fleas in wild populations. Collectively, genomes of wCfeT, wCfeJ, and their cat flea host supply instances of lateral gene transfers that could drive transitions between parasitism and mutualism. ImportanceMany arthropod and certain nematode species are infected with wolbachiae which are intracellular bacteria well known for reproductive parasitism (RP). Like other RP strategies, Wolbachia-induced cytoplasmic incompatibility, CI, increases prevalence and frequency in host populations. Mutualism is another strategy employed by wolbachiae to maintain host infection, with some strains synthesizing and supplementing certain B vitamins (particularly biotin) to invertebrate hosts. Curiously, we discovered two novel Wolbachia strains that co-infect cat fleas (Ctenocephalides felis): wCfeT carries biotin synthesis genes, while wCfeJ carries a CI-inducing toxin-antidote operon. Our analyses of these genes highlight their mobility across the Wolbachia phylogeny and source to other intracellular bacteria. Remarkably, the C. felis genome also carries two CI-like antidote genes divergent from the wCfeJ antidote gene, indicating episodic RP in cat fleas. Collectively, wCfeT and wCfeJ inform on the rampant dissemination of diverse factors that mediate Wolbachia strategies for persisting in invertebrate host populations.

genomics

Cat fleas in flux: Rampant gene duplication, genome size plasticity, and paradoxical Wolbachia infection

BackgroundFleas (Insecta: Siphonaptera) are small flightless parasites of birds and mammals; their blood-feeding can transmit many serious pathogens (i.e. the etiological agents of bubonic plague, endemic and murine typhus). The lack of flea genome assemblies has hindered research, especially comparisons to other disease vectors. Accordingly, we sequenced the genome of the cat flea, Ctenocephalides felis, an insect with substantial human health and veterinary importance across the globe. ResultsBy combining Illumina and PacBio sequencing with Hi-C scaffolding techniques, we generated a chromosome-level genome assembly for C. felis. Unexpectedly, our assembly revealed extensive gene duplication across the entire genome, exemplified by [~]38% of protein-coding genes with two or more copies and over 4,000 tRNA genes. A broad range of genome size determinations (433-551 Mb) for individual fleas sampled across different populations supports the widespread presence of fluctuating copy number variation (CNV) in C. felis. Similarly broad genome sizes were also calculated for individuals of Xenopsylla cheopis (Oriental rat flea), indicating that this remarkable "genome-in-flux" phenomenon could be a siphonapteran-wide trait. Finally, from the C. felis sequence reads we also generated closed genomes for two novel strains of Wolbachia, one parasitic and one symbiotic, found to co-infect individual fleas. ConclusionRampant CNV in C. felis has dire implications for gene-targeting pest control measures and stands to complicate standard normalization procedures utilized in comparative transcriptomics analysis. Coupled with co-infection by novel Wolbachia endosymbionts - potential tools for blocking pathogen transmission - these oddities highlight a unique and underappreciated disease vector.

genomics