TechnologiesElectrophoretic mobility shift assay
proteomics and biochemistry
Recorded terms: electrophoretic mobility shift assay
2017 · Nature · lab-led
RNase III nucleases, including human Drosha and homologues from bacteria, archaea, yeast and a urochordate, restrict positive-strand RNA viruses by recognizing unbranched RNA stem loops and impairing the viral polymerase, separably from microRNA biogenesis, catalysis and interferon.
2014 · Journal of Biological Chemistry · lab-led
Sustained IRF7 activity induces the kinase MAP3K8, which phosphorylates the proline-rich hinge of IRF3 and redirects it from homodimers into IRF3 and IRF7 heterodimers, broadening the antiviral transcriptome and scaling the cellular response to the persistence of the viral threat.
2011 · Proceedings of the National Academy of Sciences · co-led
Phosphorylation of STAT1 serine 708 by IKKε blocks formation of the STAT1 homodimer that constitutes GAF while leaving the STAT1 and STAT2 heterodimer of ISGF3 intact, biasing the shared STAT1 pool and the interferon-stimulated transcriptome toward the type I response.
2010 · Journal of Biological Chemistry · lab-led
IRF7 and ISGF3 engage overlapping interferon-stimulated response elements and drive largely overlapping antiviral transcriptomes, so that a substantial interferon-like gene program is still induced when type I and type III interferon signaling are both absent.
2007 · Science · training period
Mice lacking IKKε produce normal interferon-β but fail to induce roughly a third of interferon-stimulated genes, because interferon activates IKKε, which phosphorylates STAT1 at Ser708 and thereby determines whether ISGF3 occupies a subset of response elements.
2003 · Science · training period
The IKK-related kinases IKKepsilon and TBK1 are identified as components of the virus-activated kinase activity that phosphorylates the C-terminal serine cluster of IRF-3 and IRF-7, linking pathogen sensing to type I interferon gene induction and to establishment of an antiviral state.