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Kitano, E.

Publications and source records attributed to Kitano, E..

2 recordsLinked to original sources

Uukuniemi virus infection causes a pervasive remodelling of the RNA-binding proteome in tick cell cultures

Cellular RNA-binding proteins (RBPs) are pivotal for the viral lifecycle, mediating key host-virus interactions that promote or repress virus infection. While these interactions have been largely studied in the vertebrate host, no comprehensive analyses of protein-RNA interactions occurring in cells of arbovirus vectors, in particular ticks, have been performed to date. Here we systematically identified the responses of the RNA-binding proteome (RBPome) to infection with a prototype bunyavirus (Uukuniemi virus; UUKV) in tick cells and discovered changes in RNA-binding activity for 283 proteins. In an orthogonal approach, we analysed the composition of the viral ribonucleoprotein by immunoprecipitation of UUKV nucleocapsid protein (N) in infected cells. We found many tick RBPs that are regulated by UUKV infection and associate with viral nucleocapsid protein complexes. We confirmed experimentally that these RBPs impact UUKV infection. This includes the tick homolog of topoisomerase 3B (TOP3B), a protein able to manipulate the topology of RNA, which showed an effect on viral particle production. Our data thus reveals the first protein-RNA interaction map for infected tick cells. Research highlightsO_LIUUKV RNAs interact with nearly three hundred tick cell RBPs. C_LIO_LIDemonstrated an enrichment of N protein interactors within the upregulated RIC data suggesting a direct involvement in viral RNA metabolism and translation. C_LIO_LIDeveloped a robust methodology to silence gene expression in tick cell cultures. C_LIO_LIThe TOP3B complex facilitates efficient packaging of UUKV virions. C_LI

microbiology↗

Cheap, Robust and Versatile Two-Dimensional Chromatography system for Proteomics of Nanogram Scale Samples

In this work we describe a low loss fractionation system comprised of a reconfigured Evosep One LC system for the first dimension and a repurposed 3D-printer as a fraction collector. The setup operates as a high-pH fractionation system capable of effectively working with nanogram scales of lysate digests. The 2D RP-RP system demonstrated superior proteome coverage over single-shot data-dependent acquisition (DDA) analysis using only 5 ng of human cell lysate digest with performance increasing with increasing amounts of material. We found that the fractionation system allowed over 70% signal recovery at the peptide level and, more importantly, we observed over 30% increase on protein level intensity which indicates the complexity reduction afforded by the system outweighs the sample losses endured. The application of data-independent acquisition (DIA) and wide window acquisition (WWA) to fractionated samples allowed more than 8,000 proteins to be identified from 50 ng of material. The utility of the 2D system was further investigated for phosphoproteomics (>21,000 phosphosites from 50 g starting material) and pull-down type experiments and showed substantial improvements over single-shot experiments. We show that the 2D RP-RP system is highly versatile and powerful tool for many proteomics workflows.

systems biology↗