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van Bree, J.

Publications and source records attributed to van Bree, J..

3 recordsLinked to original sources

Screening of the Pathogen box reveals novel anti blood-feeding compounds

Soil-transmitted helminth (STH) infections such as Necator americanus infect millions globally, and are a major cause of anemia and developmental stunting in low and middle income countries. Blood-feeding hookworms in particular rely on the digestion of host erythrocytes for nutrition and therefore detoxify heme as a byproduct of their parasitism. This dependency on blood feeding and subsequent detoxification renders this pathway as a vulnerable target for therapeutic intervention, particularly as it is the cause of morbidity in those infected. Here we described the continued development and application of a high-throughput in vitro assay using the so-called rodent hookworm Nippostrongylus brasiliensis, a model that shares key traits with N. americanus including blood feeding and hemozoin-like pigment formation. We optimized a fluorescence-based screening cascade to utilise GelGreen as a cost-effective viability stain and screened 400 compounds from the MMV Pathogen Box. Multiple compounds displayed enhanced activity in the presence of blood, suggesting interference with blood-feeding or blood-feeding-induced development. Five hits were selected for further validation, and as proof-of-principle of this screening cascade, all five were well tolerated in vivo at low doses in a murine model. This study therefore demonstrates this method can be used as a tractable and biologically relevant screening approach to identify compounds active against blood-feeding nematodes. Future work can further develop such compounds into lead drug candidates, and be leveraged for comparative parasitology approaches to identify pan-anthelmintic drugs.

microbiology↗

The effect of increased CpG and UpA dinucleotides in the West Nile virus genome on virus transmission by Culex mosquitoes and pathogenesis in a vertebrate host

Vertebrate animals and many small DNA and single-stranded RNA viruses that infect vertebrates have evolved to suppress genomic CpG dinucleotides. All organisms and most viruses additionally suppress UpA dinucleotides in protein coding RNA. Synonymously recoding viral genomes to introduce CpG or UpA dinucleotides has emerged as an approach for viral attenuation and vaccine development. However, studies that investigate the effects of this recoding strategy on viral replication and pathogenesis in vivo are still limited. Flaviviruses including West Nile virus (WNV) are transmitted between vertebrate hosts by invertebrate vectors. In humans, WNV infection can cause flu-like symptoms and neuroinvasive disease. We investigated how alterations in WNV dinucleotide frequencies impact virus replication, transmission by vector mosquitoes, as well as pathogenesis and neuroinvasiveness in vertebrates. In Culex pipiens vector mosquitoes and Culex cell lines only WNV with elevated UpA frequencies displayed attenuated replication. In vertebrate cell lines and primary human neuro-astrocyte co-cultures both UpA and CpG enrichment reduced viral replication. In mice, the CpG-high WNV mutant demonstrated partial attenuation with delayed weight loss compared to wild-type WNV, though infection still resulted in 100% mortality. In contrast, 75% of animals survived inoculation with the UpA-high WNV mutant and were protected against wild-type WNV challenge. Notably, all animals that succumbed to infection had similar levels of virus in the brain, irrespective of the WNV mutant. Our results underscore the complex interplay between viral genome composition and host immune responses, highlighting potential safety concerns for dinucleotide manipulation as a strategy for live-attenuated vaccine development in flaviviruses. ImportanceFlaviviruses such as West Nile virus (WNV) pose significant public health concerns due to their potential to cause severe neurological disease. Synonymously recoding flavivirus genomes to introduce CpG or UpA dinucleotides has emerged as an approach for viral attenuation and vaccine development. However, the in vivo effects of manipulating these frequencies across the complete transmission cycle remained unexplored. Our study provides comprehensive insights of how CpG and UpA recoding affects WNV replication in both the mosquito vector and vertebrate hosts. We demonstrate that elevated UpA content attenuates virus replication throughout the transmission cycle, while CpG enrichment only impacts replication in the vertebrate host. Although UpA-high WNV shows significant attenuation and provides protection against wild-type infection, animals that succumb exhibit similar brain viral loads as wild-type infections. These findings have critical implications for live-attenuated vaccine development based on dinucleotide manipulation, specifically highlighting the importance of carefully evaluating the risk of neuroinvasion.

microbiology↗

Identification of culturable fungi and bacteria in mosquito saliva and impact on arbovirus infection in vitro

Mosquito saliva plays a key role in arbovirus transmission and pathogenesis. This study isolated and identified culturable fungal and bacterial colonies from saliva harvested from Aedes aegypti (lab strain) and Culex pipiens (field-collected) mosquitoes. For the first time, Penicillium crustosum was identified in mosquito saliva. Culturable bacteria detected in mosquito saliva included Serratia marcescens, Serratia nematodiphila, Enterobacter spp., and Klebsiella spp., which were previously identified as mosquito or insect endosymbionts in the midgut or other organs. Analysis with 16S metagenomics showed that the bacterial community in saliva appeared more diverse than the bacterial communities in midguts. Blood feeding did not affect the fungal or bacterial load in mosquito saliva. Oral treatment of adult mosquitoes with antibiotics or an antifungal drug resulted in a significant reduction of resp. bacteria or fungi present in the mosquito saliva. Co-incubation of Semliki Forest virus with saliva from antibiotic or antifungal treated mosquitoes triggered a decrease in viral infection in human skin fibroblasts compared to non-treated saliva. This work lays the foundation for further exploration of the impact of fungi and bacteria in mosquito saliva on both vector competence and arbovirus infection in the mammalian host.

microbiology↗