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Depletion and Reconstitution of Macrophages in Mice
Published on: August 1, 2012
Foot and mouth disease virus undergoes non-progressive replication in mice peritoneal macrophages and induces M1
Renjith Sebastian1, M Sravanthi1, V Umapathi1
1Indian Veterinary Research Institute, Hebbal, Bangalore 560024, India.
Abstract:
Despite the fact that macrophages link the innate and adaptive arms of immunity, it's role in the early infection of foot and mouth disease virus (FMDV) is largely unknown. Recently, depletion of macrophages in vivo after vaccination has shown to drastically diminish the protection against FMDV challenge in mouse model. Even the ability of macrophages to reduce or resist FMDV infection is not known hitherto. Therefore, we examined the replication ability of FMDV in mice peritoneal macrophages and the responsiveness in terms of macrophage polarization and cytokine production. Negative strand specific RT-PCR indicated replication of FMDV RNA in macrophages. Absolute quantitation of FMDV transcripts, immunofluorescence studies and titre of the infectious progeny virus revealed that replication peaked at 12 hpi and significantly declined by 18 hpi indicating non-progressive replication in the infected macrophages. Further, significant up regulation of inducible nitric oxide synthase by 8 -12 hpi and increase of M1 specific CD11c + cells by 42.6 % after infection showed that FMDV induce M1 polarization. A significant up regulation of TNFα and IL12 transcripts at 8 hpi supported that M1 macrophages were functional. Further, we studied the expression of Type I to III interferons (IFN) and other antiviral molecules. The results indicate a marked up regulation of Type I IFNα and β by 9.2 and 11.2 fold, respectively at 8 hpi. Of the four IFN stimulated genes (ISG), viperin showed a significant up regulation by 286-fold at 12 hpi in the mice macrophages. In conclusion, the results suggest that replication of FMDV in mice peritoneal macrophages is non-progressive with up regulation of Type I IFN and ISGs. Further, FMDV induces M1 polarization in murine peritoneal macrophages.
Insights
Macrophages play a key role in early foot-and-mouth disease virus (FMDV) infection, showing non-progressive replication and M1 polarization. This study reveals FMDV induces Type I interferons and antiviral responses in macrophages.
Area of Science:
- Immunology
- Virology
- Infectious Diseases
Background:
- Macrophages are crucial immune cells linking innate and adaptive immunity.
- The role of macrophages in early foot-and-mouth disease virus (FMDV) infection is not well understood.
- Previous studies suggest macrophages are vital for protection against FMDV challenge.
Purpose of the Study:
- To investigate FMDV replication in mouse peritoneal macrophages.
- To analyze macrophage polarization and cytokine production in response to FMDV infection.
- To understand the antiviral mechanisms employed by macrophages against FMDV.
Main Methods:
- Negative strand specific RT-PCR to detect FMDV RNA replication.
- Absolute quantitation of FMDV transcripts and infectious progeny virus titration.
- Immunofluorescence studies for M1 macrophage polarization (CD11c+ cells) and cytokine analysis (TNFα, IL12).
- Analysis of Type I-III interferons (IFN) and IFN-stimulated genes (ISGs) expression.
Main Results:
- FMDV RNA replicated in macrophages, peaking at 12 hours post-infection (hpi) and declining by 18 hpi, indicating non-progressive replication.
- FMDV infection induced M1 polarization, evidenced by increased inducible nitric oxide synthase and CD11c+ cells.
- Significant upregulation of pro-inflammatory cytokines (TNFα, IL12) and Type I interferons (IFNα, IFNβ) was observed.
- A substantial increase in the IFN-stimulated gene viperin was noted at 12 hpi.
Conclusions:
- FMDV replication in mouse peritoneal macrophages is non-progressive.
- FMDV infection triggers M1 macrophage polarization and activates Type I interferon and antiviral responses.
- Macrophages contribute to the early innate immune response against FMDV through these mechanisms.

