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A Murine Model of Dengue Virus-induced Acute Viral Encephalitis-like Disease
Published on: April 28, 2019
Pathological Characteristics of Echovirus 30 Infection in a Mouse Model
Jichen Li1,2, Guoyan Zhang2, Qiang Sun2
1Department of Medical Microbiology, Weifang Medical Universitygrid.268079.2, Weifang, People's Republic of China.
Abstract:
Echovirus 30 (E30), a member of species B enterovirus, is associated with outbreaks of aseptic meningitis and has become a global health emergency. However, the pathogenesis of E30 remains poorly understood due to the lack of appropriate animal models. In this study, we established a mouse infection model to explore the pathogenicity of E30. The 2-day-old IFNAR mice infected with E30 strain WZ16 showed lethargy and paralysis, and some died. Obvious pathological changes were observed in the skeletal muscle, brain tissue, and other tissues, with the highest viral load in the skeletal muscles. Transcriptome analysis of brain and skeletal muscle tissues from infected mice showed that significant differentially expressed genes were enriched in complement response and neuropathy-related pathways. Using immunofluorescence assay, we found that the viral double-stranded RNA (dsRNA) was detected in the mouse brain region and could infect human glioma (U251) cells. These results indicated that E30 affects the nervous system, and they provide a theoretical basis for understanding its pathogenesis. IMPORTANCE Echovirus 30 (E30) infection causes a wide spectrum of diseases with mild symptoms, such as hand, foot, and mouth disease (HFMD), acute flaccid paralysis, and aseptic meningitis and other diseases, especially one of the most common pathogens causing aseptic meningitis outbreaks. We established a novel mouse model of E30 infection by inoculating neonatal mice with clinical isolates of E30 and observed the pathological changes induced by E30. Using the E30 infection model, we found complement responses and neuropathy-related genes in the mice tissues at the transcriptome level. Moreover, we found that the viral dsRNA localized in the mouse brain and could replicate in human glioma cell line U251 rather than in the neuroblastoma cell line, SK-N-SH.
Insights
A new mouse model reveals Echovirus 30 (E30) causes neurological damage and activates immune responses. This research provides insights into E30 pathogenesis, crucial for understanding aseptic meningitis outbreaks.
Area of Science:
- Virology
- Infectious Diseases
- Neuroscience
Background:
- Echovirus 30 (E30) is a significant cause of aseptic meningitis outbreaks globally.
- The pathogenesis of E30 is poorly understood due to a lack of suitable animal models.
- E30 infection can lead to various diseases, including hand, foot, and mouth disease and acute flaccid paralysis.
Purpose of the Study:
- To establish a mouse infection model for studying Echovirus 30 pathogenicity.
- To investigate the pathological changes and molecular mechanisms underlying E30 infection in vivo.
- To explore the neurotropic potential of E30.
Main Methods:
- Development of a neonatal mouse model using Echovirus 30 strain WZ16.
- Clinical observation, pathological examination, and viral load quantification in infected mice.
- Transcriptome analysis of brain and skeletal muscle tissues; immunofluorescence assay; cell culture experiments with human glioma (U251) and neuroblastoma (SK-N-SH) cells.
Main Results:
- Infected neonatal mice exhibited lethargy, paralysis, and mortality, with significant pathological changes in skeletal muscle and brain.
- Transcriptome analysis revealed enrichment of complement response and neuropathy-related pathways in infected tissues.
- Viral double-stranded RNA (dsRNA) was detected in the mouse brain, and E30 infected human glioma cells but not neuroblastoma cells.
Conclusions:
- The established mouse model effectively mimics E30-induced pathology, including neurological effects.
- E30 infection triggers significant immune responses, particularly complement activation and pathways associated with neuropathy.
- E30 demonstrates neurotropism, affecting the nervous system and providing a basis for understanding its disease mechanisms.

