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Biology subjects

Zwaagstra, M.

Publications and source records attributed to Zwaagstra, M..

3 recordsLinked to original sources

Identification of picornavirus proteins that inhibit de novo nucleotide synthesis during infection

The picornavirus family includes well-known pathogens for humans and animals, such as enteroviruses (e.g. poliovirus, coxsackievirus, rhinovirus) and cardioviruses (e.g. encephalomyocarditis virus [EMCV] and Saffold virus). Picornaviruses modulate cellular metabolism likely to generate sufficient building blocks for virus replication. Previously, we showed that coxsackievirus B3 (CVB3) and EMCV remodel nucleotide metabolism during infection. Here, we investigated whether this modulation is attributable to specific viral proteins. For this, we studied the modulation of metabolism by several recombinant CVB3 and EMCV viruses in HeLa cells. Using isotope tracing metabolomics with three distinct labels, 13C6-glucose or 13C5/15N2-glutamine, we reveal that the 2A protease of CVB3 and the Leader protein of EMCV inhibit de novo nucleotide synthesis. Furthermore, we show that nucleotide metabolism is also reprogrammed by CVB3 and EMCV in human induced pluripotent stem cell-derived cardiomyocytes. Our insights are important to increase understanding of picornavirus-host interactions and may lead to novel therapeutic strategies.

microbiology↗

The critical role of enterovirus 2A protease in viral translation, replication, and antagonism of host antiviral responses.

Enteroviruses dramatically remodel the cellular infrastructure for efficient replication and curtailing host antiviral responses. Proteases 2Apro and 3Cpro have been implicated in these processes based on in vitro studies, ectopic overexpression, and surrogate infection systems, but their relative contributions are unknown. Here, we replace the essential 2A cleavage site at the P1-P2 junction with an internal ribosome entry site (IRES), 3CD cleavage site, or T2A sequence, allowing us to catalytically inactivate 2Apro. Viruses with an inactive 2Apro are hampered in replication in cell lines and are severely attenuated in a Coxsackievirus B3 (CVB3) mouse pancreatitis infection model. We show that 2Apro, but not 3Cpro, is essential during infection for disturbing nucleocytoplasmic transport, shutting down host mRNA translation, suppressing stress granule formation, cleaving retinoic acid-inducible gene-1 (RIG-I)-like receptor (RLR) signaling pathway proteins and suppressing interferon-/{beta} (IFN-/{beta}) transcription, and overcoming the antiviral action of IFN-induced restriction factors. Moreover, using an advanced single-molecule live cell imaging approach, we reveal that 2Apro is important for the initial round of replication of the incoming viral RNA, which is a bottleneck for efficient infection. In conclusion, we establish that 2Apro plays a critical role in subverting antiviral responses and establishing a favorable host environment to expedite enterovirus replication.

microbiology↗

Molecular basis of autoimmune disease protection by MDA5 variants

MDA5 recognizes dsRNA from viruses and retroelements. Cooperative filament formation and ATP-dependent proofreading confer MDA5 with the necessary sensitivity and specificity for dsRNA. The gene encoding MDA5 is a hotspot for disease-associated variants. Many MDA5 variants are associated with protection from autoimmune disease, while increasing the risk of infection and chronic inflammation, but how these variants affect MDA5-dependent RNA sensing remains unclear. Here, we determine the consequences of autoimmune-protective MDA5 variants on the molecular structure and activities of MDA5. The rare variants E627* and I923V reduce the cellular interferon response to picornavirus infection and are deficient in filament formation. The I923V variant is ATPase hyperactive, causing premature dissociation from dsRNA. Cryo-EM structures of MDA5 I923V bound to dsRNA at different stages of ATP hydrolysis reveal smaller RNA binding interfaces, leading to excessive proofreading activity. Variants R843H and T946A, which are genetically linked and cause mild phenotypes, have no effect on dsRNA recognition, suggesting an indirect disease mechanism. We conclude that the autoimmune-protective MDA5 variants lead to a loss of MDA5-dependent signaling via multiple distinct mechanisms.

biochemistry↗