Related Experiment Video
Updated: Jul 11, 2026

Viral Tracing of Genetically Defined Neural Circuitry
Published on: October 17, 2012
JAK-STAT signaling pathways are activated in the brain following reovirus infection
Robin J Goody1, J David Beckham, Kira Rubtsova
1Departments of Neurology, University of Colorado at Denver and Health Sciences Center, Denver, Colorado, USA.
Abstract:
Reovirus infection provides a classic experimental model system for studying the pathogenesis of viral infections of the central nervous system (CNS), with apoptosis acting as the major mechanism of cell death. The authors have examined the role of signal transducer and activator of transcription (STAT)1, a component of Janus-activated kinase (JAK)-STAT signaling, a pathway implicated in antiviral responses and pathways regulating apoptosis, following reovirus infection. Infection of primary cortical neuron cultures with reovirus serotype 3 strain Abney (T3A) resulted in phosphorylation of STAT1 at sites critical for transcriptional activity. Activated STAT1 was also detected in the brain of neonatal mice following T3A infection, with a nuclear pattern of expression in areas of virus-induced injury. Activation of STAT proteins is typically mediated by JAKs. The authors observed JAK2 phosphorylation (Tyr 1007/1008) in brain lysates from T3A-infected mice. Inhibition of JAK activity with the inhibitor AG-490 blocked reovirus-induced STAT1 activation in neuronal cultures, indicating reovirus-induced STAT activation is JAK dependent. Pretreatment of neuronal cultures with antibody raised against interferon (IFN)-alpha/betaR2 inhibited T3A-induced STAT1 phosphorylation, whereas neither IFN-gamma or IFN-gammaR2 antibody pretreatment had any effect on T3A-induced STAT1 phosphorylation. Mice lacking the STAT1 gene demonstrated increased susceptibility to reovirus infection, with increased mortality and higher viral titers in the brain compared to wild-type animals. The results demonstrate activation of a type I IFN-mediated, JAK-dependent STAT signaling pathway following reovirus infection and suggest that STAT1 is a key component of host defense mechanisms against reovirus infection in the brain.
Insights
Reovirus infection activates a JAK-dependent STAT1 signaling pathway. STAT1 plays a crucial role in the host defense against reovirus in the brain, as STAT1-deficient mice show increased susceptibility.
Area of Science:
- Neurovirology
- Immunology
- Molecular Biology
Background:
- Reovirus infection serves as a model for central nervous system (CNS) viral pathogenesis, primarily causing cell death via apoptosis.
- The Janus-activated kinase (JAK)-STAT signaling pathway is involved in antiviral responses and apoptosis regulation.
Purpose of the Study:
- To investigate the role of signal transducer and activator of transcription (STAT)1 in reovirus infection of the CNS.
- To elucidate the involvement of the JAK-STAT signaling pathway in reovirus-induced pathogenesis and host defense.
Main Methods:
- Infection of primary cortical neuron cultures and neonatal mice with reovirus serotype 3 strain Abney (T3A).
- Analysis of STAT1 and JAK2 phosphorylation, STAT1 nuclear localization, and viral titers.
- Pharmacological inhibition of JAK activity and antibody-mediated blockade of interferon receptors.
- Assessment of reovirus susceptibility in STAT1-deficient mice.
Main Results:
- Reovirus infection induced STAT1 phosphorylation and nuclear localization in neurons and brain tissue.
- JAK2 phosphorylation was observed in infected mouse brains, and JAK inhibition blocked STAT1 activation.
- Type I interferon receptor blockade inhibited reovirus-induced STAT1 phosphorylation.
- STAT1-deficient mice exhibited increased mortality and higher viral loads compared to wild-type controls.
Conclusions:
- Reovirus infection activates a type I interferon-mediated, JAK-dependent STAT signaling pathway.
- STAT1 is essential for the host's defense mechanisms against reovirus infection in the brain.
Related Concept Videos
Encephalitis ll: Pathophysiology
The JAK-STAT Signaling Pathway
Bacterial Meningitis II: Pathophysiology
Arboviral Encephalitis
Viral Meningitis
cAMP-dependent Protein Kinase Pathways

