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Molecular localization of abortive infection of resident peritoneal macrophages by herpes simplex virus type 1

P S Morahan1, S Mama, F Anaraki

  • 1Department of Microbiology and Immunology, Medical College of Pennsylvania, Philadelphia 19129.

Insights

Resident peritoneal macrophages resist herpes simplex virus type 1 (HSV-1) replication due to a block in early viral gene expression. This study identifies a specific molecular basis for this intrinsic antiviral defense in macrophages.

Area of Science:

  • Virology
  • Immunology
  • Cell Biology

Background:

  • Mononuclear phagocytes, including macrophages, display varied intrinsic resistance to herpes simplex virus type 1 (HSV-1).
  • This resistance is linked to macrophage population heterogeneity and differentiation states.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying HSV-1 replication blockade in resident peritoneal macrophages from B6C3F1 mice.
  • To characterize the specific stage of viral gene expression where replication is inhibited.

Main Methods:

  • Northern blotting to detect virus-specific mRNA.
  • In situ hybridization for visualizing RNA and protein localization.
  • Immunofluorescence assays to identify viral proteins.
  • Comparison with HSV-1-infected permissive Vero cells.

Main Results:

  • Immediate-early HSV-1 genes (ICP4, ICP0, ICP22, ICP27) and the early tk gene were transcribed in resident peritoneal macrophages.
  • Expression of early genes ICP8 and viral DNA polymerase was significantly reduced or undetectable.
  • Late viral genes, glycoprotein D and glycoprotein C (gC), were not detected at the RNA or protein level.
  • Only a small percentage of macrophages expressed viral products, highlighting cellular heterogeneity.

Conclusions:

  • HSV-1 replication is blocked at the level of early to delayed-early gene expression in resident peritoneal macrophages.
  • Intrinsic macrophage resistance involves a failure to express key viral genes necessary for replication.
  • Cellular heterogeneity within the macrophage population influences the extent of viral gene expression.

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