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Meilenbrock, R. L.

Publications and source records attributed to Meilenbrock, R. L..

2 recordsLinked to original sources

A Wolbachia pipientis protein confers resistance to virus infection in Drosophila melanogaster

The intracellular bacterium Wolbachia pipientis alters the biology of its arthropod hosts in many ways, and can increase resistance to RNA viruses in both Drosophila and mosquitoes. Wolbachia-induced pathogen blocking has generated much interest because of its potential to restrict insect vector transmission of human diseases caused by RNA viruses. However, the molecular mechanisms by which Wolbachia affects host viral resistance are still mostly elusive. We used dilp2-3,5 mutant Drosophila, which are long-lived, but only in the presence of Wolbachia, to show that the presence of Wolbachia also increased the resistance of the mutant flies to infection with Drosophila C virus (DCV), relative both to mutants lacking Wolbachia and to wild type flies with and without Wolbachia. The insulin mutant flies had higher Wolbachia titres than wild type flies. By RNA-seq analysis of the Wolbachia transcriptome, we identified Wolbachia genes that were more strongly expressed in dilp2-3,5 mutant flies. Ankyrin-domain-containing proteins were among the most strongly up-regulated and they are predicted to be secreted effector proteins. To address their effect on host physiology, we generated 4 transgenic fly lines each with inducible expression of a different genes encoding ankyrin-domain-containing proteins. Expression of 3 of these did not cause obvious effects, but expression of WD0754 at high levels severely shortened fly survival. Interestingly, however, chronic low-level induction of WD0754 increased the resistance of the flies to DCV infection. Proteomics analysis showed a robust, tissue-specific, anti-viral response upon WD0754 induction, and identified the NFkB-like IMD pathway as a potential mediator of the antiviral activity of WD0754. Consistently, WD0754 expression activated Relish, a key downstream transcriptional mediator of IMD signalling, while loss-of Relish blocked the antiviral effect of WD0754. In summary, we identified a Wolbachia-derived ankyrin domain containing protein that modulates host immunity through the IMD pathway.

molecular biology↗

DNA-binding-independent mechanisms of metabolic regulation by the Drosophila FOXO transcription factor

Forkhead box-O (FOXO) transcription factors are evolutionarily conserved regulators of several biological processes, including development, stress responses, metabolism and ageing. As downstream effectors of nutrient-dependent cell signalling pathways, including insulin/IGF signalling, they integrate signals from multiple stimuli to orchestrate appropriate transcriptional responses to changes in the nutritional environment. Traditionally, FOXO-dependent responses have been attributed to target gene regulation through direct interactions with regulatory regions by DNA-binding via the conserved Forkhead (FH) domain. However, emerging evidence suggests that FOXO proteins may also influence gene expression through DNA-binding-independent mechanisms. However, differences in transcriptional outputs between DNA-binding dependent and independent FOXO functions have yet to be explored. Here, we have used genomic engineering of the endogenous Drosophila foxo locus to disrupt the DNA-binding activity of the single fly FOXO orthologue, allowing us to dissect the in vivo contributions of canonical and non-canonical dFOXO functions. We show that while DNA-binding is essential for several dFOXO-mediated phenotypes including female fecundity, lifespan, and resistance to oxidative and xenobiotic stress, other traits such as adult body size and survival during starvation remain intact. Notably, DNA-binding-deficient dFOXO flies exhibit defective lipid mobilisation under starvation, implicating a DNA-binding-independent role for dFOXO in metabolic regulation. Differential gene expression analysis during starvation in these mutants revealed key transcriptional changes in genes encoding metabolic regulators as well as regulators of transcription and chromatin structure. Together, these findings reveal distinct modes of dFOXO transcriptional regulation that depend on its direct association with DNA.

genetics↗