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A Tetracycline-regulated Cell Line Produces High-titer Lentiviral Vectors that Specifically Target Dendritic Cells
Published on: June 19, 2013
Feline immunodeficiency virus dendritic cell infection and transfer
Wendy S Sprague1, Melissa Robbiani2, Paul R Avery1
1Department of Microbiology, Immunology and Pathology, College of Veterinary Medicine and Biomedical Sciences, Colorado State University, Fort Collins, CO 80523-1619, USA.
Insights
Feline dendritic cells (DC) support limited feline immunodeficiency virus (FIV) infection, but efficiently transfer it to CD4(+) T cells, amplifying viral replication. This highlights how lentiviruses exploit DC/T-cell interactions for infection spread.
Area of Science:
- Virology
- Immunology
- Cell Biology
Background:
- Feline immunodeficiency virus (FIV) interacts with dendritic cells (DC) during initial infection stages.
- The role of DC in supporting or transferring FIV infection is not fully understood.
Purpose of the Study:
- To investigate the susceptibility of feline myeloid DC to FIV infection.
- To assess the potential for FIV transfer from DC to CD4(+) T cells.
Main Methods:
- Studied FIV infection in feline myeloid DC.
- Assessed FIV transfer to CD4(+) T cells after DC exposure.
- Differentiated between virus bound to DC versus de novo DC infection before T-cell transfer.
Main Results:
- FIV was detected in DC vesicles within 2 hours; low FIV DNA was found in isolated DC.
- Activated CD4(+) T cells induced a burst of FIV replication in DC.
- Infection of T cells was robust even after DC incubation, indicating de novo DC infection and subsequent transfer.
Conclusions:
- Feline DC support restricted FIV infection, sufficient for efficient transfer to T cells.
- DC-mediated transfer triggers major viral replication bursts.
- FIV exploits DC/T-cell interactions for viral amplification, similar to HIV and SIV.
Abstract:
Feline immunodeficiency virus (FIV) interacts with dendritic cells (DC) during initiation of infection, but whether DC support or transfer FIV infection remains unclear. To address this issue, we studied the susceptibility of feline myeloid DC to FIV infection and assessed potential transfer of infection from DC to CD4(+) T cells. FIV was detected in membrane-bound vesicles of DC within 2 h of inoculation, although only low concentrations of FIV DNA were found in virus-exposed isolated DC. Addition of resting CD4(+) T cells increased viral DNA levels; however, addition of activated CD4(+) T cells resulted in a burst of viral replication manifested by FIV p27 capsid antigen generation. To determine whether transfer of FIV infection required productively infected DC (vs virus bound to DC but not internalized), virus-exposed DC were cultured for 2 days to allow for degradation of uninternalized virus and initiation of infection in the DC, then CD4(+) T blasts were added. Infection of T cells remained robust, indicating that T-cell infection is likely to be mediated by de novo viral infection of DC followed by viral transfer during normal DC/T-cell interactions. We conclude that feline DC support restricted FIV infection, which nevertheless is sufficient to efficiently transfer infection to susceptible T cells and trigger the major burst of viral replication. Feline DC/FIV/T-cell interactions (similar to those believed to occur in human immunodeficiency virus and simian immunodeficiency virus infections) highlight the means by which immunodeficiency-inducing lentiviruses exploit normal DC/T-cell interactions to transfer and amplify virus infection.
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