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Updated: Jan 19, 2026

Evaluation of Zika Virus-specific T-cell Responses in Immunoprivileged Organs of Infected Ifnar1-/- Mice
Published on: October 17, 2018
Zika virus encephalitis in immunocompetent mice is dominated by innate immune cells and does not require T or B cells
Emina Hayashida1, Zheng Lung Ling2, Thomas M Ashhurst2,3
1School of Life and Environmental Sciences, the Marie Bashir Institute for Infectious Diseases and Biosecurity, Charles Perkins Centre, and the Bosch Institute, The University of Sydney, Sydney, Australia.
Background:
Until the end of the twentieth century, Zika virus (ZIKV) was thought to cause a mostly mild, self-limiting disease in humans. However, as the geographic distribution of ZIKV has shifted, so too has its pathogenicity. Modern-day ZIKV infection is now known to cause encephalitis, acute disseminated encephalomyelitis, and Guillain-Barré syndrome in otherwise healthy adults. Nevertheless, the underlying pathogenetic mechanisms responsible for this shift in virulence remain unclear.
Methods:
Here, we investigated the contribution of the innate versus the adaptive immune response using a new mouse model involving intracranial infection of adult immunocompetent mice with a moderately low dose of ZIKV MR766. To determine the contribution of type I interferons (IFN-Is) and adaptive immune cells, we also studied mice deficient for the IFN-I receptor 1 (Ifnar1-/-) and recombination-activating gene 1 (Rag1-/-).
Results:
We show that intracranial infection with ZIKV resulted in lethal encephalitis. In wild-type mice, ZIKV remained restricted predominantly to the central nervous system (CNS) and infected neurons, whereas astrocytes and microglia were spared. Histological and molecular analysis revealed prominent activation of resident microglia and infiltrating monocytes that were accompanied by an expression of pro-inflammatory cytokines. The disease was independent of T and B cells. Importantly, unlike peripheral infection, IFN-Is modulated but did not protect from infection and lethal disease. Lack of IFN-I signaling resulted in spread of the virus, generalized inflammatory changes, and accelerated disease onset.
Conclusions:
Using intracranial infection of immunocompetent wild-type mice with ZIKV, we demonstrate that in contrast to the peripheral immune system, the CNS is susceptible to infection and responds to ZIKV by initiating an antiviral immune response. This response is dominated by resident microglia and infiltrating monocytes and macrophages but does not require T or B cells. Unlike in the periphery, IFN-Is in the CNS cannot prevent the establishment of infection. Our findings show that ZIKV encephalitis in mice is dependent on the innate immune response, and adaptive immune cells play at most a minor role in disease pathogenesis.
Insights
Zika virus (ZIKV) can cause lethal encephalitis in the central nervous system (CNS). The innate immune response, involving microglia and monocytes, drives ZIKV encephalitis, while adaptive immunity plays a minimal role.
Area of Science:
- Neuroscience
- Immunology
- Virology
Background:
- Zika virus (ZIKV) is increasingly associated with severe neurological diseases like encephalitis, a shift from its previously mild presentation.
- The mechanisms driving ZIKV's increased neurovirulence remain poorly understood.
Purpose of the Study:
- To investigate the roles of innate and adaptive immunity in ZIKV-induced encephalitis.
- To elucidate the contribution of type I interferons (IFN-Is) in the central nervous system (CNS) during ZIKV infection.
Main Methods:
- Intracranial infection of adult immunocompetent mice with ZIKV MR766.
- Utilized mice deficient in IFN-I receptor 1 (Ifnar1-/-) and recombination-activating gene 1 (Rag1-/-) to assess immune responses.
Main Results:
- Intracranial ZIKV infection led to lethal encephalitis, primarily affecting neurons within the CNS.
- The antiviral response involved activated microglia and infiltrating monocytes, independent of T and B cells.
- Type I interferons (IFN-Is) modulated but did not prevent ZIKV infection or disease in the CNS; their absence accelerated disease.
Conclusions:
- The CNS is susceptible to ZIKV infection, mounting an innate immune response dominated by microglia and monocytes.
- Unlike peripheral infections, CNS-intrinsic IFN-I signaling does not prevent ZIKV establishment.
- ZIKV encephalitis pathogenesis in the CNS is primarily driven by the innate immune response, with adaptive immunity playing a minor role.
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