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.

Plos One
|July 25, 2019
PubMed

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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