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Culotta, J.

Publications and source records attributed to Culotta, J..

2 recordsLinked to original sources

Multipolar spindle assembly and mitotic slippage underlie symbiont-mediated asexual reproduction

Maternally inherited bacteria can profoundly impact animal biology. A notable example is the induction of thelytokous parthenogenesis: the asexual production of female offspring. Despite decades of symbiont-mediated parthenogenesis documented across diverse arthropods, the underlying cell biological mechanisms remain poorly understood. In some species of parasitic wasps, Wolbachia causes a chromosome segregation failure during the first mitotic division in unfertilized haploid embryos. This diplodizes the embryo and facilitates asexual reproduction of females. To elucidate the mechanism of mitotic failure and understand how the animal continues development, we compared meiosis and early embryonic mitoses of the parasitoid wasp, Trichogramma pretiosum, with and without their parthenogenesis-inducing Wolbachia symbiont. We show that meiosis in these animals is anastral, and embryos undergo de novo microtubule organizing center (MTOC) biogenesis prior to the first embryonic mitosis, regardless of Wolbachia. During the first mitosis, embryos with Wolbachia had increased numbers of MTOCs associated with the oocyte nucleus and formed multipolar spindles in a modified metaphase, after which chromosome segregation failed. A restitution nucleus formed, and mitotic slippage enabled the diploid nucleus to transition to interphase and replicate. Subsequent mitotic divisions inherited supernumerary MTOCs, but formed pseudo-bipolar spindles and segregated normally. These results demonstrate that Wolbachia-mediated parthenogenesis stems from altered MTOC biology, provide a structural basis for mitotic failure and the subsequent restitution. Symbiont-mediated parthenogenesis offers unique opportunities to uncover the cell biology of asexual reproduction and a fascinating model for understanding mitosis more broadly.

Developmental Biology↗

A reference genome for Trichogramma kaykai: A tiny desert-dwelling parasitoid wasp with competing sex-ratio distorters

The tiny parasitoid wasp Trichogramma kaykai inhabits the Mojave Desert of the southwest United States. Populations of this tiny insect variably host up to two different sex-distorting genetic elements: (1) the endosymbiotic bacterium Wolbachia which induces the parthenogenetic reproduction of females, and (2) a B-chromosome, "Paternal Sex Ratio" (PSR), which converts would-be female offspring to PSR-transmitting males. We report here the genome of a Wolbachia-infected Trichogramma kaykai isofemale colony KSX58. Using Oxford Nanopore sequencing we produced a final genome assembly of 203 Mbp with 45x coverage, consisting of 213 contigs with an N50 of 1.9 Mbp. The assembly is quite complete, with 91.41% complete BUSCOs recovered: a very high score for Trichogrammatids that have been previously characterized for having high levels of core gene losses. We also report a complete mitochondrial genome for T. kaykai, and an assembly of the associated Wolbachia, strain wTkk. We identified copies of the parthenogenesis-inducing genes pifA and pifB in a remnant prophage region of the wTkk genome. The Trichogramma kaykai assembly is the highest quality genome assembly for the genus to-date and will serve as a great resource for understanding the evolution of sex and selfish genetic elements.

genomics↗