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Neophytou, K.

Publications and source records attributed to Neophytou, K..

3 recordsLinked to original sources

Comparative transcriptomics reveals an extracellular worm argonaute as an ancestral regulator of LTR retrotransposons.

Safeguarding the genome from non-self elements is essential for reproduction, development, and ageing. One of the major threats to genome integrity is Transposable Elements (TEs), which can be post-transcriptionally silenced through small RNAs (sRNAs) and argonaute proteins. Recent work suggests TE-derived sRNAs may also act as virulence factors in host-pathogen interactions. During infection, the intestinal parasite Heligmosomoides bakeri secretes a single argonaute protein (exWAGO) and a wide variety of TE-derived sRNAs. Although exWAGO is highly expressed, conserved, and secreted by parasitic nematodes, its function and sRNA guide preference remain unclear. Using comparative transcriptomics of the sRNAs bound to exWAGO within parasites of rodents, livestock and humans, and its orthologs in C. elegans, we found that exWAGO is capable of loading sRNAs produced from all classes of TEs in addition to some protein-coding and non-coding transcripts. However, our results suggest that the ancestral endogenous function of exWAGO was likely linked to LTR retrotransposon regulation. To understand how this relates to potential extracellular functions of exWAGO we also examined the sRNAs bound to exWAGO secreted by H. bakeri in both vesicular and non-vesicular forms. Extracellular exWAGO preferentially loads sRNA guides derived from non-autonomous and fragmented LTRs, suggesting the existence of adaptable reservoirs of regulatory sRNAs with potential roles in cross-species RNA communication. Together, our results show that exWAGO is part of an evolutionarily conserved pathway for LTR retrotransposon regulation, while preferentially utilising degenerated elements as sources of secreted sRNAs.

genomics↗

A non-vesicular Argonaute protein is transmitted from nematode to mouse and is important for parasite survival

Argonautes are ancient proteins with well-characterised functions in cell-autonomous gene regulation and genome defense but less clear roles in non-cell-autonomous processes. Extracellular Argonautes have been reported across plants, animals and protozoa yet their biochemical and functional properties remain elusive. Here we demonstrate that an extracellular Argonaute (exWAGO) released by the rodent-infective parasitic nematode Heligmosomoides bakeri is detectable inside mouse cells during the natural infection. We further show that exWAGO is released from H.bakeri in both vesicular and non-vesicular forms that have different resistances to proteolysis, different accessibilities to antibodies and associate with different subsets of secondary siRNAs. Using recombinant exWAGO protein we demonstrate that non-vesicular exWAGO is directly internalised by mouse cells in vitro and that immunisation of mice with exWAGO confers partial protection against subsequent H. bakeri infection and generates antibodies that block exWAGO uptake into cells. Finally, we show that properties of exWAGO are conserved across Clade V nematodes that infect humans and livestock. Together this work expands the context in which Argonautes function and illuminates an RNA-binding protein as a vaccine target for parasitic nematodes.

molecular biology↗

The restriction factor pastrel is associated with host vigor, viral titer, and variation in disease tolerance during Drosophila C Virus infection

Genetic variation for both resistance and disease tolerance has been described in a range of species infected with bacterial, viral and fungal pathogens. In Drosophila melanogaster, genetic variation in mortality following systemic Drosophila C Virus (DCV) infection has been shown to be driven by large effect polymorphisms in the viral restriction factor pastrel (pst). However, it is unclear if pst impacts variation in DCV titres (i.e. resistance), or if it also contributes to disease tolerance. We investigated systemic infection across a range of DCV challenge doses spanning nine orders of magnitude, in males and females of ten Drosophila Genetic Reference Panel (DGRP) lines carrying either a susceptible (S) or resistant (R) pst allele. Our results uncover among-line variation in fly survival, viral titers, and disease tolerance measured both as the ability to maintain survival (mortality tolerance) and reproduction (fecundity tolerance). We confirm the role of pst in resistance, as fly lines with the resistant (R) pst allele experienced lower viral titers, and we uncover novel effects of pst on host vigor, as flies carrying the R allele exhibited higher survival and fecundity even in the absence of infection. Finally, we found significant variation in the expression of the JAK-STAT ligand upd3 and the epigenetic regulator of JAK-STAT G9a. While G9a has been previously shown to mediate tolerance of DCV infection, we found no correlation between the expression of either upd3 or G9a on fly tolerance or resistance. Our work highlights the importance of both resistance and tolerance in viral defence.

immunology↗