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Intracerebroventricular Viral Injection of the Neonatal Mouse Brain for Persistent and Widespread Neuronal Transduction
Published on: September 15, 2014
Intracerebral Inoculation of Mouse-Passaged Saffold Virus Type 3 Affects Cerebellar Development in Neonatal Mice
Osamu Kotani1,2, Tadaki Suzuki1, Masaru Yokoyama3
1Department of Pathology, National Institute of Infectious Diseases, Tokyo, Japan.
Abstract:
Saffold virus (SAFV), a human cardiovirus, is occasionally detected in infants with neurological disorders, including meningitis and cerebellitis. We recently reported that SAFV type 3 isolates infect cerebellar glial cells, but not large neurons, in mice. However, the impact of this infection remained unclear. Here, we determined the neuropathogenesis of SAFV type 3 in the cerebella of neonatal ddY mice by using SAFV passaged in the cerebella of neonatal BALB/c mice. The virus titer in the cerebellum increased following the inoculation of each of five passaged strains. The fifth passaged strain harbored amino acid substitutions in the VP2 (H160R and Q239R) and VP3 (K62M) capsid proteins. Molecular modeling of the capsid proteins suggested that the VP2-H160R and VP3-K62M mutations alter the structural dynamics of the receptor binding surface via the formation of a novel hydrophobic interaction between the VP2 puff B and VP3 knob regions. Compared with the original strain, the passaged strain showed altered growth characteristics in human-derived astroglial cell lines and greater replication in the brains of neonatal mice. In addition, the passaged strain was more neurovirulent than the original strain, while both strains infected astroglial and neural progenitor cells in the mouse brain. Intracerebral inoculation of either the original or the passaged strain affected brain Purkinje cell dendrites, and a high titer of the passaged strain induced cerebellar hypoplasia in neonatal mice. Thus, infection by mouse-passaged SAFV affected cerebellar development in neonatal mice. This animal model contributes to the understanding of the neuropathogenicity of SAFV infections in infants. IMPORTANCE Saffold virus (SAFV) is a candidate neuropathogenic agent in infants and children, but the neuropathogenicity of the virus has not been fully elucidated. Recently, we evaluated the pathogenicity of two clinical SAFV isolates in mice. Similar to other neurotropic picornaviruses, these isolates showed mild infectivity of glial and neural progenitor cells, but not of large neurons, in the cerebellum. However, the outcome of this viral infection in the cerebellum has not been clarified. Here, we examined the tropism of SAFV in the cerebellum. We obtained an in vivo-passaged strain from the cerebella of neonatal mice and examined its genome and its neurovirulence in the neonatal mouse brain. The passaged virus showed high infectivity and neurovirulence in the brain, especially the cerebellum, and affected cerebellar development. This unique neonatal mouse model will be helpful for elucidating the neuropathogenesis of SAFV infections occurring early in life.
Insights
Saffold virus (SAFV) infection in neonatal mice caused cerebellar damage and developmental issues. This study developed a mouse model to understand SAFV neuropathogenesis in infants.
Area of Science:
- Virology
- Neuroscience
- Pathogenesis
Background:
- Saffold virus (SAFV), a human cardiovirus, is linked to infant neurological disorders.
- Previous studies showed SAFV infects cerebellar glial cells but not neurons in mice.
- The impact of SAFV infection on cerebellar development remained unclear.
Purpose of the Study:
- To determine the neuropathogenesis of SAFV type 3 in neonatal mouse cerebella.
- To investigate the effects of an in vivo-passaged SAFV strain on the developing brain.
- To establish a neonatal mouse model for studying SAFV neuropathogenicity.
Main Methods:
- SAFV type 3 was passaged multiple times in neonatal mouse cerebella.
- The passaged viral strain's genome and capsid protein mutations were analyzed.
- Molecular modeling was used to predict the impact of mutations on viral structure.
- Neurovirulence and replication of original and passaged SAFV strains were assessed in neonatal mice.
- Histological analysis examined the effects on cerebellar cells, particularly Purkinje cells.
Main Results:
- A passaged SAFV strain exhibited amino acid substitutions in VP2 and VP3 capsid proteins.
- These mutations potentially altered the receptor binding surface dynamics.
- The passaged strain showed increased replication and neurovirulence in neonatal mouse brains.
- Both strains infected glial and neural progenitor cells, affecting Purkinje cell dendrites.
- High titers of the passaged strain led to cerebellar hypoplasia in neonatal mice.
Conclusions:
- Mouse-passaged SAFV significantly impacts cerebellar development in neonatal mice.
- The identified mutations may contribute to increased viral neurovirulence.
- This neonatal mouse model is valuable for elucidating SAFV neuropathogenesis in early life.
- Findings contribute to understanding SAFV as a potential neuropathogenic agent in infants.
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