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Late gene expression–deficient cytomegalovirus vectors elicit conventional T cells that do not protect against SIV
Scott G. Hansen, Jennie L. Womack, Wilma Perez, Kimberli A. Schmidt, Emily Marshall, Ravi F. Iyer, Hillary Cleveland Rubeor, Claire E. Otero, Husam Taher, Nathan H. Vande Burgt, Richard Barfield, Kurt T. Randall, David Morrow, Colette M. Hughes, Andrea N. Selseth, Roxanne M. Gilbride, Julia C. Ford, Patrizia Caposio, Alice F. Tarantal, Cliburn Chan, Daniel Malouli, Peter A. Barry, Sallie R. Permar, Louis J. Picker, Klaus Früh
Scott G. Hansen, Jennie L. Womack, Wilma Perez, Kimberli A. Schmidt, Emily Marshall, Ravi F. Iyer, Hillary Cleveland Rubeor, Claire E. Otero, Husam Taher, Nathan H. Vande Burgt, Richard Barfield, Kurt T. Randall, David Morrow, Colette M. Hughes, Andrea N. Selseth, Roxanne M. Gilbride, Julia C. Ford, Patrizia Caposio, Alice F. Tarantal, Cliburn Chan, Daniel Malouli, Peter A. Barry, Sallie R. Permar, Louis J. Picker, Klaus Früh
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Research Article AIDS/HIV Virology

Late gene expression–deficient cytomegalovirus vectors elicit conventional T cells that do not protect against SIV

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Abstract

Rhesus cytomegalovirus–based (RhCMV-based) vaccine vectors induce immune responses that protect ~60% of rhesus macaques (RMs) from SIVmac239 challenge. This efficacy depends on induction of effector memory–based (EM-biased) CD8+ T cells recognizing SIV peptides presented by major histocompatibility complex-E (MHC-E) instead of MHC-Ia. The phenotype, durability, and efficacy of RhCMV/SIV-elicited cellular immune responses were maintained when vector spread was severely reduced by deleting the antihost intrinsic immunity factor phosphoprotein 71 (pp71). Here, we examined the impact of an even more stringent attenuation strategy on vector-induced immune protection against SIV. Fusion of the FK506-binding protein (FKBP) degradation domain to Rh108, the orthologue of the essential human CMV (HCMV) late gene transcription factor UL79, generated RhCMV/SIV vectors that conditionally replicate only when the FK506 analog Shield-1 is present. Despite lacking in vivo dissemination and reduced innate and B cell responses to vaccination, Rh108-deficient 68-1 RhCMV/SIV vectors elicited high-frequency, durable, EM-biased, SIV-specific T cell responses in RhCMV-seropositive RMs at doses of ≥ 1 × 106 PFU. Strikingly, elicited CD8+ T cells exclusively targeted MHC-Ia–restricted epitopes and failed to protect against SIVmac239 challenge. Thus, Rh108-dependent late gene expression is required for both induction of MHC-E–restricted T cells and protection against SIV.

Authors

Scott G. Hansen, Jennie L. Womack, Wilma Perez, Kimberli A. Schmidt, Emily Marshall, Ravi F. Iyer, Hillary Cleveland Rubeor, Claire E. Otero, Husam Taher, Nathan H. Vande Burgt, Richard Barfield, Kurt T. Randall, David Morrow, Colette M. Hughes, Andrea N. Selseth, Roxanne M. Gilbride, Julia C. Ford, Patrizia Caposio, Alice F. Tarantal, Cliburn Chan, Daniel Malouli, Peter A. Barry, Sallie R. Permar, Louis J. Picker, Klaus Früh

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Figure 2

Rh108-deficiency abrogates RhCMV pathogenicity in fetal RMs.

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Rh108-deficiency abrogates RhCMV pathogenicity in fetal RMs.
(A) The iso...
(A) The isolate UCD59 was inoculated either at 1 × 106 PFU (n = 6) or at 1 × 105 1.6 × 105 PFU (n = 4), whereas 68-1 RhCMV/SIVrtni (n = 7), 68-1 RhCMVΔRh110/SIVrtni (n = 14), or 68-1 RhCMV/FKPB-Rh108/SIVrtni (n = 9) were inoculated at 1 × 106 PFU. The percentage of surviving fetuses is shown over time. Significant differences between the five groups were determined (log rank test, P < 0.0001), with post hoc pairwise comparison demonstrating that Rh108-FKBP and ΔRh110 differed significantly from the UCD59 1 × 106 PFU cohort. Other comparisons were not significant (NS). (B) RhCMV genome copies per mL of amniotic fluid (AF) determined at the endpoint. Post hoc pairwise comparisons (after Kruskal Wallis test) were significant by Wilcoxon Rank Sum test with Holm’s multiple testing correction between the Rh108-FKBP or ΔRh110 cohorts and either UCD59 cohort (P value shown for 1 × 106 PFU). (C) Genome copies determined in samples from surviving fetuses from CNS and non-CNS tissues (UCD59 represents one fetus from the 1 × 106 and 4 fetuses from the 1 × 105 group). Samples with above-threshold RhCMV detection are shown. Data for C are shown in Supplemental Figure 2, A and B. (D) Mean genome copies per fetus (except for sex-specific tissues; RM6.6; Supplemental Figure 2B) was not included due to limited tissue availability). There was a significant difference by Kruskal Wallis test between the four groups in both CNS (P = 0.00602) and non-CNS (P < 0.00001). Post hoc pairwise comparisons by Wilcoxon Rank Sum test suggested a significant difference between FKBP-Rh108 RhCMV and UCD59 (shown) or UCD59 together with 68-1 (P = 0.0138). ΔRh110-inoculated fetuses did not differ for CNS, whereas non-CNS samples differed from UCD59 (P = 0.0385) and UCD59 combined with 68-1 (P = 0.0266). Box plots show the median with whiskers extending to the farthest data point within 1.5× interquartile range (IQR) above and below the box (first and third quartiles).

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