Zika virus (ZIKV) is an arthropod-borne Orthoflavivirus that caused a major outbreak in Central and South America in 2015–16. During that outbreak, ZIKV infection during pregnancy was associated with high rates of adverse outcomes, including miscarriage and a spectrum of neurological birth defects collectively termed congenital Zika syndrome (CZS). Ten years later, there are still no licensed ZIKV vaccines, underscoring the need for robust experimental models to evaluate vaccine efficacy against congenital disease. Here, we evaluated a highly pathogenic nonhuman primate pregnancy model for its ability to assess vaccine-mediated protection using a Zika virus-like particle (VLP) vaccine as a test platform. First, non-pregnant rhesus macaques (RM) were vaccinated with a prime-boost method to compare control, VLP alone, and VLP plus Alhydrogel (alum) adjuvant. Vaccination plus alum elicited strong neutralizing antibody responses and reduced viral dissemination compared to controls. Next, we evaluated the vaccine’s protective efficacy against adverse pregnancy complications. Two cohorts of female RM were vaccinated with ZIKV-VLP adjuvanted with alum or alum alone prior to time-mated breeding. At gestational day (GD) 30 (mid first trimester), pregnant animals were challenged with ZIKV-DAK 41524, an African-lineage strain previously shown to induce frequent first-trimester pregnancy loss. Within the vaccinated cohort, two of three animals reached the study endpoint of GD 90 with no observed adverse pregnancy outcomes. One vaccinated animal experienced early pregnancy loss despite the absence of detectable virus in fetal or placental tissues. In the sham vaccine control pregnancy cohort, severe adverse outcomes included miscarriage and hydrops fetalis with widespread viral RNA and placental pathology in two animals. These results support a high risk of early pregnancy loss following African-lineage ZIKV-DAK 41524 infection in RM. This model can be further used to understand the complexities of placental immunological features underlying miscarriage following ZIKV infection.
Hannah K. Jaeger, Jessica L. Smith, C. Labriola et al.· PLoS Neglected Tropical Dise...· 0 citations
Natural killer (NK) cells are key innate effectors during antiviral immune responses, with their activity regulated in part by interactions between polymorphic killer-cell immunoglobulin-like receptors (KIRs) on NK cells and their major histocompatibility complex class I (MHC I) ligands on target cells. In human immunodeficiency virus (HIV) infection, certain KIR and MHC I allelic combinations are associated with enhanced viral control and delayed disease progression. To interrogate the contribution of a common KIR+ NK cell subset to the immune response to simian immunodeficiency virus (SIV) infection of rhesus macaques, we depleted KIR3DL01+ cells using an adeno-associated virus (AAV) vector encoding a KIR3DL01-reactive monoclonal antibody. AAV delivery resulted in high and durable antibody expression with minimal anti-drug antibody responses, leading to sustained depletion of KIR3DL01+ NK cells from blood, lymph nodes, and gut-associated lymphoid tissue for more than nine months. Following intrarectal SIV challenge, there was no difference in peak viremia between the two groups. However, KIR3DL01-depleted animals exhibited a modest increase in chronic viremia, reaching statistical significance at multiple timepoints relative to KIR3DL01+ controls. Phenotypic analysis revealed ongoing NK cell maturation in peripheral blood and lymphoid tissue, accompanied by increased expression of activation and proliferation markers during acute and early chronic infection. An expansion of NKG2D+ NK cells was also observed in chronic SIV infection. These findings suggest that KIR3DL01+ NK cells contribute to the inhibition of SIV replication during chronic infection. Moreover, they demonstrate the feasibility of AAV-vectored antibody delivery for long-term, perhaps indefinite depletion of a lymphocyte subset in a nonhuman primate model.
Kjell Sandstrom, Grace N. Hagedorn, Sean C Robinson et al.· PLoS Pathogens· 0 citations
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