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Multicolor Flow Cytometry Analyses of Cellular Immune Response in Rhesus Macaques
Published on: April 23, 2010
Multigene DNA priming-boosting vaccines protect macaques from acute CD4+-T-cell depletion after simian-human
N A Doria-Rose1, C Ohlen, P Polacino
1Seattle Biomedical Research Institute, University of Washington, Seattle, Washington 98109, USA.
Abstract:
We evaluated four priming-boosting vaccine regimens for the highly pathogenic simian human immunodeficiency virus SHIV89.6P in Macaca nemestrina. Each regimen included gene gun delivery of a DNA vaccine expressing all SHIV89.6 genes plus Env gp160 of SHIV89.6P. Additional components were two recombinant vaccinia viruses, expressing SHIV89.6 Gag-Pol or Env gp160, and inactivated SHIV89.6 virus. We compared (i) DNA priming/DNA boosting, (ii) DNA priming/inactivated virus boosting, (iii) DNA priming/vaccinia virus boosting, and (iv) vaccinia virus priming/DNA boosting versus sham vaccines in groups of 6 macaques. Prechallenge antibody responses to Env and Gag were strongest in the groups that received vaccinia virus priming or boosting. Cellular immunity to SHIV89.6 peptides was measured by enzyme-linked immunospot assay; strong responses to Gag and Env were found in 9 of 12 vaccinia virus vaccinees and 1 of 6 DNA-primed/inactivated-virus-boosted animals. Vaccinated macaques were challenged intrarectally with 50 50% animal infectious doses of SHIV89.6P 3 weeks after the last immunization. All animals became infected. Five of six DNA-vaccinated and 5 of 6 DNA-primed/particle-boosted animals, as well as all 6 controls, experienced severe CD4(+)-T-cell loss in the first 3 weeks after infection. In contrast, DNA priming/vaccinia virus boosting and vaccinia virus priming/DNA boosting vaccines both protected animals from disease: 11 of 12 macaques had no loss of CD4(+) T cells or moderate declines. Virus loads in plasma at the set point were significantly lower in vaccinia virus-primed/DNA-boosted animals versus controls (P = 0.03). We conclude that multigene vaccines delivered by a combination of vaccinia virus and gene gun-delivered DNA were effective against SHIV89.6P viral challenge in M. nemestrina.
Insights
Vaccine combinations using vaccinia virus and DNA gene gun delivery protected macaques from simian-human immunodeficiency virus (SHIV) challenge. These regimens prevented severe CD4+ T-cell loss and reduced viral loads, indicating potential for HIV vaccine development.
Area of Science:
- Immunology
- Vaccinology
- Virology
Background:
- Developing an effective vaccine against simian-human immunodeficiency virus (SHIV) is crucial for combating HIV.
- Evaluating novel vaccine strategies, including prime-boost regimens, is essential for improving vaccine efficacy.
Purpose of the Study:
- To assess the efficacy of four different priming-boosting vaccine regimens against SHIV89.6P challenge in Macaca nemestrina.
- To compare the immunogenicity and protective effects of DNA, vaccinia virus, and inactivated virus vaccine components.
Main Methods:
- Four vaccine regimens were tested: DNA/DNA, DNA/inactivated virus, DNA/vaccinia virus, and vaccinia virus/DNA, alongside sham controls.
- Animals were immunized via gene gun (DNA) and/or recombinant vaccinia virus, followed by challenge with SHIV89.6P.
- Immune responses (antibody and cellular immunity) and clinical outcomes (CD4+ T-cell counts, viral load) were monitored.
Main Results:
- Vaccinia virus-based regimens elicited stronger antibody and cellular immune responses compared to DNA or inactivated virus components.
- While all animals were infected, DNA/vaccinia virus and vaccinia virus/DNA regimens significantly protected against severe CD4+ T-cell loss.
- Vaccinia virus-primed/DNA-boosted animals showed significantly lower set-point plasma viral loads compared to controls.
Conclusions:
- Combining vaccinia virus and DNA gene gun delivery creates effective multigene vaccine strategies against SHIV89.6P.
- These regimens offer protection by preserving CD4+ T-cell populations and reducing viral replication.
- The findings support the potential of these combined vaccine approaches for future HIV vaccine development.
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