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Baars, M. J. D.

Publications and source records attributed to Baars, M. J. D..

2 recordsLinked to original sources

Pre-assembly of biomolecular condensate seeds drives RSV replication

During infection many RNA viruses, including respiratory syncytial virus (RSV), form specialized biomolecular condensates, inclusion bodies (IBs), where viral transcription and replication occur1-4. Paradoxically, high protein concentrations are typically required for condensate nucleation5, yet attaining sufficient protein levels in infection is thought to require IBs for viral transcription and replication. To uncover how viruses solve this paradox to establish IBs, we visualized early infection of RSV in real-time with single genomic viral ribonucleoprotein (vRNP) resolution. Our results reveal that IBs are nucleated from infecting vRNPs rather than de novo in the cytoplasm. IB nucleation further requires in-virion pre-assembly of viral protein-protein interaction networks on vRNPs to form pre-replication centers (PRCs). PRCs are potent condensate nucleation seeds due to their resistance to disassembly and efficient recruitment of newly-synthesized viral proteins. The high protein affinity of PRCs also results in increased polymerase complex association, allowing efficient viral transcription even in the absence of IBs. Together, these activities create a feed-forward loop that drives rapid IB formation. Intriguingly, PRC assembly depends on in-virion viral protein levels and is highly heterogeneous among virions, explaining cell-to-cell heterogeneity in infection progression, and identifying heterogeneous virions as the origin of infection heterogeneity. Together, our results show that in-virion pre-assembly of PRCs kick-starts viral condensate nucleation upon host-cell entry, and explains cell-to-cell heterogeneity in RSV infection.

microbiology↗

Stromal localization of inactive CD8+ T cells in metastatic mismatch repair deficient colorectal cancer

BackgroundThe determinants of metastasis in mismatch repair deficiency with high levels of microsatellite instability (MSI-H) in colorectal cancer (CRC) are poorly understood. Here, we hypothesized that distinct immune and stromal microenvironments in primary tumors may discriminate between non-metastatic MSI-H CRC and metastatic MSI-H CRC. MethodsWe profiled 46,727 single cells using high-plex imaging mass cytometry and analyzed both differential cell type abundance, and spatial distribution of stromal and immune cells in primary CRC tumors with or without metastatic capacity. We validated our findings in a second independent cohort using immunohistochemistry. ResultsHigh-plex imaging mass cytometry and hierarchical clustering based on microenvironmental markers separated primary MSI-H CRC tumors with and without metastatic capacity. Primary tumors with metastatic capacity displayed a high stromal content and low influx of CD8+ T cells, which expressed significantly lower levels of markers reflecting proliferation (Ki67) and antigen-experience (CD45RO) compared to CD8+ T cells in non-metastatic tumors. CD8+ T cells showed intra-epithelial localization in non-metastatic tumors, but stromal localization in metastatic tumors, which was validated in a second cohort. ConclusionWe conclude that localization of phenotypically distinct CD8+ T cells within stroma may predict metastasis formation in MSI-H CRC.

cancer biology↗