TechnologiesSmall interfering RNA and short hairpin knockdown
small RNA methods
Recorded terms: RNA interference; RNA interference knockdown; short hairpin RNAs; siRNA knockdown; siRNA transfection; small interfering RNA knockdown; small interfering RNA silencing; small interfering RNA transfection
2025 · Cell Host & Microbe · collaborative
The Capicua and ATXN1L repressor complex binds an eight-nucleotide motif at interferon and interferon-stimulated gene loci to hold them repressed during homeostasis in human and mouse cells, and is degraded through EGFR-MAPK signaling early in respiratory viral entry, which relieves that repression.
2023 · Molecular Cell · collaborative
Stress granules restrain rather than amplify double-stranded RNA sensing, and cells lacking the granule nucleators G3BP1 and G3BP2, UBAP2L or PKR respond to double-stranded RNA with excessive RIG-I-like receptor, PKR and OAS activation and MAVS-dependent apoptosis.
2022 · Science Signaling · collaborative
Kinase substrate specificity profiling assigns the phosphorylation cluster in the SARS-CoV-2 nucleocapsid SR-rich domain to a cascade initiated by SRPK1 and SRPK2 and extended by GSK-3 and casein kinase 1, whose inhibition suppresses coronavirus replication.
2022 · Journal of Virology · collaborative
Uncoupling the two steps of influenza A virus genome replication with viral promoter mutations shows that ANP32A is required for synthesis of both the complementary RNA intermediate and progeny genomic RNA, and that it acts on the actively replicating polymerase rather than the encapsidating one.
2021 · Cell · co-led
A genome-scale CRISPR loss-of-function screen in ACE2-expressing human alveolar epithelial cells ranks every protein-coding gene by the effect of its loss on SARS-CoV-2 infection, converging on endosomal machinery, and links several top hits to increased cholesterol biosynthesis and, for RAB7A, to intracellular sequestration of ACE2.
2021 · Journal of Virology · lab-led
Restricting nucleoprotein availability in negative-sense RNA virus infections both blocks full-length genome replication and increases production of aberrant replication products that are sensed through RIG-I and MAVS, so a strong interferon response accompanies rather than follows successful infection.
2021 · Journal of Virology · lab-led
SARS-CoV-2 infection of human lung epithelial cells engages NF-κB at chromatin, transcriptional, protein and post-translational levels without engaging the type I interferon transcription factors, and loss of p65 or p50 abolishes viral replication in a manner rescued by reconstituting RelA transcriptional activity.
2020 · Cell · collaborative
A time-resolved phosphoproteomic survey of SARS-CoV-2-infected cells showing that infection acts mainly through signalling rather than protein abundance, activating casein kinase II and the p38 cascade while shutting down mitotic kinases, and converting that kinase profile into inhibitors with antiviral activity.
2015 · Cell Reports · lab-led
An attenuated influenza A virus engineered to deliver individual artificial small interfering RNAs enables a fitness-based loss-of-function screen inside an infected mouse, and that screen identifies MDA5 as a contributor to the antiviral response to influenza A virus despite the established role of RIG-I as the sensor that induces interferon beta.
2014 · Proceedings of the National Academy of Sciences · lab-led
Loss of the nuclear RNase III enzyme Drosha, but not of Dicer, increases RNA virus replication in mammalian fibroblasts, and diverse RNA viruses drive Drosha into the cytoplasm by CRM1-dependent export in a manner that does not require new protein synthesis, RIG-I, TBK1 or type I interferon signaling.
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.
2014 · Cell Reports · lab-led
Engineering vesicular stomatitis virus to eliminate RISC-loaded small RNAs attenuates rather than enhances replication in mice, and confers no replication advantage even when interferon signaling is removed, arguing that small RNA silencing does not contribute to mammalian antiviral defense.
2013 · Cell Reports · lab-led
The inefficient 5 prime splice site of influenza A virus segment 8 functions as a timing device, causing the nuclear export protein to accumulate slowly as a minor product of abundant NS1 transcription, with both raising and lowering that rate attenuating the virus through mistimed ribonucleoprotein export.
2013 · Nature Reviews Microbiology · lab-led
Argues that chordates, unlike plants, nematodes and arthropods, do not use small RNAs as antiviral defence, and that this absence of interplay between host microRNAs and RNA viruses is what leaves the microRNA machinery available for engineering viral tropism and small RNA delivery.
2012 · Cell Host & Microbe · co-led
Poxviruses degrade host microRNAs through the catalytic subunit of their own poly(A) polymerase, VP55, which adds short nontemplated adenosine tails to argonaute-loaded guide strands and thereby marks them for cellular decay, while small RNAs carrying a 3 prime terminal 2 prime O-methyl group are spared.
2010 · RNA · lab-led
Insertion of a primary microRNA locus into the exclusively cytoplasmic Sindbis virus genome yields mature, functional miR-124 through a Dicer-dependent but microprocessor- and Exportin-5-independent route, defining a cytoplasmic hairpin-processing activity in vertebrate cells that the authors term a virtron.
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.
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.