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de Bruin, A. C. M.

Publications and source records attributed to de Bruin, A. C. M..

3 recordsLinked to original sources

A pro-apoptotic selection strategy enables CRISPR screening in mosquitoes and identifies Lachesin as a chikungunya virus entry factor

Chikungunya virus (CHIKV) is a re-emerging mosquito-borne alphavirus that is transmitted primarily by Aedes aegypti and Aedes albopictus mosquitoes. CHIKV infection can result in debilitating arthritis-like symptoms in humans. While determinants of CHIKV host cell entry into mammalian cells are known, their equivalents in mosquito cells remain largely elusive. To identify CHIKV entry factors, we performed a membrane-focused genome-scale CRISPR loss-of-function screen in Aedes albopictus mosquito cells. To enable selection of refractory cells, we engineered CHIKV to express the pro-apoptotic Drosophila Reaper protein. CHIKV-Reaper induced robust cell death in mosquito cells with only modest viral fitness loss. Using this selection strategy together with an Aedes albopictus C6/36-based CRISPR screening platform, we identified glycosylphosphatidylinositol (GPI)-anchored cell surface proteins and multiple enzymes involved in the GPI-anchor biosynthesis pathway as proviral candidates. Ectopic expression of the GPI-anchored cell-adhesion protein Lachesin rendered refractory mammalian cells susceptible to CHIKV and the related arthritogenic alphaviruses Semliki Forest virus and Ross River virus. In contrast, Lachesin-expressing cells remained refractory to the encephalitic alphavirus Venezuelan equine encephalitis virus. We demonstrate that Lachesin is essential for CHIKV infection in both Aedes aegypti and Aedes albopictus cells, as confirmed by gene silencing. Here, we identify Lachesin as a critical candidate entry receptor for CHIKV and establish pro-apoptotic arboviruses as a powerful and versatile strategy for functional CRISPR screening in mosquito cells.

microbiology↗

Lachesin is a mosquito receptor for multiple arthritogenic alphaviruses

Arthritogenic alphaviruses cause acute febrile illnesses associated with rash and arthritis when they are transmitted to humans through the bite of infected mosquitoes. Among these, chikungunya virus (CHIKV), transmitted primarily through the bite of infected Aedes aegypti and Aedes albopictus mosquitoes, causes explosive outbreaks involving hundreds of thousands to millions of cases, with recent re-emergence in several global regions. While several cellular receptors that mediate alphavirus entry into mammalian cells have been identified, their mosquito counterparts remained unknown, largely due to a lack of functional genomics tools for these invertebrate species. Here, we established a CRISPR-based genetic screening platform in Aedes albopictus cells and used it to identify Lachesin, a conserved invertebrate cell adhesion molecule, as a receptor for CHIKV and multiple related alphaviruses including Semliki Forest virus (SFV), onyong-nyong virus (ONNV), Mayaro virus (MAYV), and Ross River virus (RRV). Lachesin depletion using RNA interference, anti-Lachesin antibody treatment, and soluble forms of Lachesin blocked CHIKV and SFV E2-E1 glycoprotein-mediated infection of mosquito cells. We show that alphavirus E2-E1 glycoproteins bind the first immunoglobulin domain of Lachesin, facilitating attachment and internalization of virus-like particles. Orthologs from divergent mosquito genera, but not from arachnids or other arthropods, also serve as alphavirus receptors, suggesting that cellular receptor binding is not the main obstacle to arthritogenic alphavirus vector host expansion. Our findings enhance understanding of the mechanisms of alphavirus emergence and vector competence and could aid in the development of broadly active, entry-targeted therapeutics against multiple alphaviruses that threaten public health.

microbiology↗

Transient RNA structures underlie highly pathogenic avian influenza virus genesis

Highly pathogenic avian influenza viruses (HPAIVs) cause severe disease and high fatality in poultry1. They emerge exclusively from H5 and H7 low pathogenic avian influenza viruses (LPAIVs)2. Although insertion of a furin-cleavable multibasic cleavage site (MBCS) in the hemagglutinin gene was identified decades ago as the genetic basis for LPAIV-to-HPAIV transition3,4, the exact mechanisms underlying said insertion have remained unknown. Here we used an innovative combination of bioinformatic models to predict RNA structures forming around the influenza virus RNA polymerase during replication, and circular sequencing5 to reliably detect nucleotide insertions. We show that transient H5 hemagglutinin RNA structures predicted to trap the polymerase on purine-rich sequences drive nucleotide insertions characteristic of MBCSs, providing the first strong empirical evidence of RNA structure involvement in MBCS acquisition. Insertion frequencies at the H5 cleavage site were strongly affected by substitutions in flanking genomic regions altering predicted transient RNA structures. Introduction of H5-like cleavage site sequences and structures into an H6 hemagglutinin resulted in MBCS-yielding insertions never observed before in H6 viruses. Our results demonstrate that nucleotide insertions that underlie H5 HPAIV emergence result from a previously unknown RNA-structure-driven diversity-generating mechanism, which could be shared with other RNA viruses.

microbiology↗