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Increasing the translation of mouse models of MERS coronavirus pathogenesis through kinetic hematological analysis
Sarah R Leist1, Kara L Jensen1, Ralph S Baric1
1Department of Epidemiology, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, United States of America.
Abstract:
Newly emerging viral pathogens pose a constant and unpredictable threat to human and animal health. Coronaviruses (CoVs) have a penchant for sudden emergence, as evidenced by severe acute respiratory syndrome coronavirus (SARS-CoV), Middle East respiratory syndrome CoV (MERS-CoV) and most recently, swine acute diarrhea syndrome coronavirus (SADS-CoV). Small animal models of emerging viral pathogenesis are crucial to better understand the virus and host factors driving disease progression. However, rodent models are often criticized for their limited translatability to humans. The complete blood count is the most ordered clinical test in the United States serving as the cornerstone of clinical medicine and differential diagnosis. We recently generated a mouse model for MERS-CoV pathogenesis through the humanization of the orthologous entry receptor dipeptidyl peptidase 4 (DPP4). To increase the translatability of this model, we validated and established the use of an automated veterinary hematology analyzer (VetScan HM5) at biosafety level 3 for analysis of peripheral blood. MERS-CoV lung titer peaked 2 days post infection concurrent with lymphopenia and neutrophilia in peripheral blood, two phenomena also observed in MERS-CoV infection of humans. The fluctuations in leukocyte populations measured by Vetscan HM5 were corroborated by standard flow cytometry, thus confirming the utility of this approach. Comparing a sublethal and lethal dose of MERS-CoV in mice, analysis of daily blood draws demonstrates a dose dependent modulation of leukocytes. Major leukocyte populations were modulated before weight loss was observed. Importantly, neutrophil counts on 1dpi were predictive of disease severity with a lethal dose of MERS-CoV highlighting the predictive value of hematology in this model. Taken together, the inclusion of hematological measures in mouse models of emerging viral pathogenesis increases their translatability and should elevate the preclinical evaluation of MERS-CoV therapeutics and vaccines to better mirror the complexity of the human condition.
Insights
This study enhances mouse models for emerging viruses like MERS-CoV by using veterinary hematology analyzers. This improves translatability to human conditions, aiding in the development of better therapeutics and vaccines.
Area of Science:
- Virology
- Immunology
- Veterinary Medicine
Background:
- Emerging viral pathogens, including Coronaviruses (CoVs) like MERS-CoV, present significant global health threats.
- Small animal models are vital for studying viral pathogenesis, but their translatability to humans is often limited.
- Complete blood count analysis is a fundamental diagnostic tool in clinical medicine.
Purpose of the Study:
- To improve the translatability of a humanized MERS-CoV mouse model by incorporating automated hematology analysis.
- To validate the use of a veterinary hematology analyzer (VetScan HM5) in a biosafety level 3 environment for peripheral blood analysis.
- To assess the predictive value of hematological parameters in MERS-CoV pathogenesis.
Main Methods:
- Generation of a MERS-CoV mouse model via humanization of the dipeptidyl peptidase 4 (DPP4) receptor.
- Validation of an automated veterinary hematology analyzer (VetScan HM5) for peripheral blood analysis in a BSL-3 setting.
- Correlation of hematological findings with flow cytometry and assessment of dose-dependent effects of MERS-CoV infection.
Main Results:
- MERS-CoV infection led to lymphopenia and neutrophilia, mirroring human MERS-CoV cases.
- Automated hematology analyzer results were consistent with flow cytometry.
- Neutrophil counts at 1 day post-infection predicted disease severity in a dose-dependent manner.
Conclusions:
- Automated hematology analysis enhances the translatability of small animal models for emerging viral diseases.
- Incorporating hematological measures improves preclinical evaluation of therapeutics and vaccines for MERS-CoV.
- This approach better reflects the complexity of human MERS-CoV infections.
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