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Bruurs, L. J. M.

Publications and source records attributed to Bruurs, L. J. M..

3 recordsLinked to original sources

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↗

Direct quantification of chemogenetic H2O2 production in live human cells.

Reactive Oxygen Species (ROS) in the form of H2O2 can act both as physiological signaling molecules as well as damaging agents, depending on its concentration and localization. The downstream biological effects of H2O2 were often studied making use of exogenously added H2O2, generally as a bolus and at supraphysiological levels. But this does not mimic the continuous, low levels of intracellular H2O2 production by for instance mitochondrial respiration. The enzyme D-Amino Acid Oxidase (DAAO) catalyzes H2O2 formation using D-amino acids, which are absent from culture media, as a substrate. Ectopic expression of DAAO has recently been used in several studies to produce inducible and titratable intracellular H2O2. However, a method to directly quantify the amount of H2O2 produced by DAAO has been lacking, making it difficult to assess whether observed phenotypes are the result of physiological or artificially high levels of H2O2. Here we describe a simple assay to directly quantify DAAO activity by measuring the oxygen consumed during H2O2 production. The oxygen consumption rate of DAAO can directly be compared to the basal mitochondrial respiration in the same assay, allowing to estimate whether the ensuing level of H2O2 production is within the range of physiological mitochondrial ROS production. We show that the assay can also be used to select clones that express differently localized DAAO with the same absolute level of H2O2 production to be able to discriminate the effects of H2O2 production at different subcellular locations from differences in total oxidative burden. This method therefore greatly improves the interpretation and applicability of DAAO-based models, thereby moving the redox biology field forward.

cell biology↗

Heterogeneity in viral replication dynamics shapes the antiviral response

In response to virus infection, host cells can activate antiviral signaling to restrict virus replication and communicate viral infection to neighboring cells. For poorly understood reasons, antiviral response activation is highly heterogeneous among infected cells; both quantitatively (level of pathway activation) and qualitatively (transcribed antiviral gene set). Here, we used live-cell single-molecule imaging to simultaneously visualize viral infection and antiviral signaling, providing quantitative insights into antiviral response activation in single cells; first, the probability of activating an antiviral response varies throughout infection, with most efficient activation occurring several hours after the first viral replication. Second, cell-to-cell heterogeneity in viral replication rates early in infection determine the efficiency of antiviral response activation. Finally, variation in signaling strength of the viral sensing pathway result in qualitatively distinct antiviral responses. Together, this works identifies key parameters that shape the antiviral response and provides quantitative insights into the origin of heterogeneity in the antiviral response.

immunology↗