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HSV-2 ΔgD elicits FcγR-effector antibodies that protect against clinical isolates
Christopher D. Petro, Brian Weinrick, Nazanin Khajoueinejad, Clare Burn, Rani Sellers, William R. Jacobs Jr, Betsy C. Herold
Christopher D. Petro, Brian Weinrick, Nazanin Khajoueinejad, Clare Burn, Rani Sellers, William R. Jacobs Jr, Betsy C. Herold
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Research Article Vaccines Virology

HSV-2 ΔgD elicits FcγR-effector antibodies that protect against clinical isolates

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Abstract

A single-cycle herpes simplex virus (HSV) deleted in glycoprotein D (ΔgD-2) elicited high titer HSV-specific antibodies (Abs) that (i) were rapidly transported into the vaginal mucosa; (ii) elicited antibody-dependent cell-mediated cytotoxicity but little neutralization; (iii) provided complete protection against lethal intravaginal challenge; and (iv) prevented establishment of latency in mice. However, clinical isolates may differ antigenically and impact vaccine efficacy. To determine the breadth and further define mechanisms of protection of this vaccine candidate, we tested ΔgD-2 against a panel of clinical isolates in a murine skin challenge model. The isolates were genetically diverse, as evidenced by genomic sequencing and in vivo virulence. Prime and boost immunization (s.c.) with live but not heat- or UV-inactivated ΔgD-2 completely protected mice from challenge with the most virulent HSV-1 and HSV-2 isolates. Furthermore, mice were completely protected against 100 times the lethal dose that typically kills 90% of animals (LD90) of a South African isolate (SD90), and no latent virus was detected in dorsal root ganglia. Immunization was associated with rapid recruitment of HSV-specific FcγRIII- and FcγRIV-activating IgG2 Abs into the skin, resolution of local cytokine and cellular inflammatory responses, and viral clearance by day 5 after challenge. Rapid clearance and the absence of latent virus suggest that ΔgD-2 elicits sterilizing immunity.

Authors

Christopher D. Petro, Brian Weinrick, Nazanin Khajoueinejad, Clare Burn, Rani Sellers, William R. Jacobs Jr, Betsy C. Herold

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Figure 4

Virus is rapidly cleared and no latent virus is detected in dorsal root ganglia isolated from HSV-2 ΔgD-2–vaccinated mice.

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Virus is rapidly cleared and no latent virus is detected in dorsal root ...
Mice were immunized with ΔgD-2 or VD60 cell lysates (control) and subsequently challenged by skin scarification with 1, 10, or 100 times the LD90 of HSV-2(SD90) or with 1 or 10 times the LD90 of HSV-1(B3 × 1.1) (n = 5 mice per group). (A) Skin biopsies were obtained on day 2 and day 5 after challenge and assayed for viral load by plaque assay on Vero cells (n = 3 samples/group, lines represent mean). (B) Replicating or (C) latent HSV in dorsal root ganglia (DRG) tissue obtained from ΔgD-2–vaccinated (day 14 after challenge) or control-vaccinated (time of euthanasia) mice were assessed by plaque assay and qPCR, respectively (n = 5 mice/group). (D) Latency was further evaluated by coculturing Vero cells with DRG isolated at day 5 after challenge from ΔgD-2– and control–immunized mice that were challenged with a 1× LD90 of HSV-2 SD90 (n = 5/group). Data in B and C are presented as box and whisker plots, with the bounds of the box representing the 25th and 75th percentile, the line representing the median, the whiskers representing the 10th and 90th percentile, and black dots indicating outliers. The HSV-2 ΔgD-2–vaccinated group and control–vaccinated groups were compared by student’s t test; *P < 0.05; **P < 0.01; ***P < 0.001.

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