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A Murine Model of Dengue Virus-induced Acute Viral Encephalitis-like Disease
Published on: April 28, 2019
Development and characterization of a mouse model for Marburg hemorrhagic fever
Kelly L Warfield1, Steven B Bradfute, Jay Wells
1United States Army Medical Research Institute of Infectious Diseases, Fort Detrick, Maryland 21702, USA. kelly@integratedbiotherapeutics.com
Abstract:
The lack of a mouse model has hampered an understanding of the pathogenesis and immunity of Marburg hemorrhagic fever (MHF), the disease caused by marburgvirus (MARV), and has created a bottleneck in the development of antiviral therapeutics. Primary isolates of the filoviruses, i.e., ebolavirus (EBOV) and MARV, are not lethal to immunocompetent adult mice. Previously, pathological, virologic, and immunologic evaluation of a mouse-adapted EBOV, developed by sequential passages in suckling mice, identified many similarities between this model and EBOV infections in nonhuman primates. We recently demonstrated that serially passaging virus recovered from the liver homogenates of MARV-infected immunodeficient (SCID) mice was highly successful in reducing the time to death in these mice from 50 to 70 days to 7 to 10 days after challenge with the isolate MARV-Ci67, -Musoke, or -Ravn. In this study, we extended our findings to show that further sequential passages of MARV-Ravn in immunocompetent mice caused the MARV to kill BALB/c mice. Serial sampling studies to characterize the pathology of mouse-adapted MARV-Ravn revealed that this model is similar to the guinea pig and nonhuman primate MHF models. Infection of BALB/c mice with mouse-adapted MARV-Ravn caused uncontrolled viremia and high viral titers in the liver, spleen, lymph node, and other organs; profound lymphopenia; destruction of lymphocytes within the spleen and lymph nodes; and marked liver damage and thrombocytopenia. Sequencing the mouse-adapted MARV-Ravn strain revealed differences in 16 predicted amino acids from the progenitor virus, although the exact changes required for adaptation are unclear at this time. This mouse-adapted MARV strain can now be used to develop and evaluate novel vaccines and therapeutics and may also help to provide a better understanding of the virulence factors associated with MARV.
Insights
Researchers developed a mouse model for Marburg hemorrhagic fever (MHF) by adapting the Marburg virus (MARV). This new model allows for better study of MHF pathogenesis and the development of antiviral therapies.
Area of Science:
- Virology
- Immunology
- Pathogenesis
Background:
- Marburg hemorrhagic fever (MHF) pathogenesis and immunity are poorly understood due to the lack of a suitable mouse model.
- Primary Marburg virus (MARV) isolates are not lethal in immunocompetent adult mice, hindering research and therapeutic development.
Purpose of the Study:
- To develop and characterize a mouse model for Marburg hemorrhagic fever (MHF) using a mouse-adapted Marburg virus (MARV) strain.
- To evaluate the pathological, virological, and immunological similarities of this new model to existing MHF models in guinea pigs and nonhuman primates.
Main Methods:
- Sequential passages of Marburg virus (MARV) in immunodeficient (SCID) mice, followed by further passages in immunocompetent BALB/c mice.
- Pathological, virological, and immunological characterization of MARV-infected BALB/c mice.
- Sequencing of the adapted MARV strain to identify genetic differences from the progenitor virus.
Main Results:
- Serial passages of MARV-Ravn in immunocompetent BALB/c mice resulted in a lethal MHF model.
- Infection led to uncontrolled viremia, high viral titers in multiple organs, profound lymphopenia, lymphocyte destruction, liver damage, and thrombocytopenia.
- Sequencing revealed 16 amino acid differences in the adapted MARV-Ravn strain compared to the progenitor virus.
Conclusions:
- A mouse-adapted MARV-Ravn strain effectively models Marburg hemorrhagic fever (MHF) in BALB/c mice.
- This model mimics key pathological features observed in guinea pig and nonhuman primate MHF models.
- The developed mouse model is crucial for advancing the understanding of MARV virulence and for evaluating novel vaccines and therapeutics.

