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Parkins, C. J.

Publications and source records attributed to Parkins, C. J..

4 recordsLinked to original sources

A Zika Virus-Like Particle Vaccine Mitigates Early Pregnancy Loss In Rhesus Macaques

Zika virus (ZIKV) is an arthropod-borne Orthoflavivirus that caused a major outbreak in the Americas in 2015-16. In Brazil, up to 46% of ZIKV positive pregnancies resulted in congenital Zika syndrome (CZS). CZS is characterized by a wide range of neurologic birth defects and miscarriage in up to 7.6% of affected pregnancies. With no current licensed ZIKV vaccines, we sought to evaluate a Zika virus-like particle (VLP) vaccine candidate in a rhesus macaque (RM) pregnancy model. VLPs were produced in mammalian cells expressing the pre-membrane-envelope region of the Asian-lineage ZIKV strain PRVABC59, which belongs to the Asian ZIKV lineage that is associated with outbreaks of congenital disease. To evaluate vaccine protection against adverse pregnancy complications, two cohorts of female RM were vaccinated with ZIKV-VLP with adjuvant Alhydrogel (alum) or adjuvant alone prior to mating. At gestational day (GD) 30 (early first trimester), pregnant animals were challenged with ZIKV-DAK 41524, an African-lineage strain shown to induce 1st-trimester fetal demise in 78% (n=11/14 animals) of RM, making it an ideal and stringent model for evaluating ZIKV vaccines. Within the vaccinated cohort, 2 of 3 animals reached the study endpoint of GD 90 with no observed adverse pregnancy outcomes. The third animal experienced pregnancy loss at GD 49 (18 d post infection), although no infectious virus was detected in placental or fetal tissues. In the unvaccinated cohort, two animals had severe adverse events. One animal experienced preterm labor, and another developed early-onset hydrops fetalis with widespread ZIKV-RNA detected via RNAscope and extensive placental damage. These results confirm a significant risk for early pregnancy loss in RM infected with ZIKV-DAK 41524. This model can be further used to understand the complexities of placental immunological features underlying stillbirth and miscarriage following infection. Our findings indicate that this ZIKV-VLP vaccine candidate protected pregnant macaques against fetal demise associated with highly pathogenic ZIKV challenge. Author SummaryZika virus (ZIKV) infection during pregnancy is associated with pregnancy loss, severe birth defects, including microcephaly and developmental delays, and other subtle neurologic changes. Although vaccine development efforts have been ongoing since the 2015/2016 ZIKV outbreak, no approved vaccine is currently available. Many existing studies have tested vaccines in animal models using strains such as ZIKV-PR that cause mild or moderate pregnancy complications at similar rates to human cases. Using challenge strains that only cause mild, or moderate pregnancy complications makes it difficult to rigorously evaluate vaccine efficacy. In this study, we tested a virus-like particle (VLP) vaccine, a safe and effective method for use during pregnancy as it is replication-deficient and only contains viral structural antigens. We found that the VLP vaccine, when paired with an adjuvant (alum), induced strong antibody responses in mice and controlled viral dissemination following challenge in nonpregnant macaques. To evaluate the protective efficacy of the ZIKV-VLP vaccine against in utero infection and disease, we used a stringent model of ZIKV infection during early pregnancy in rhesus macaques that is associated with high rates of fetal demise. In pregnant macaques, the vaccine reduced maternal viremia, limited viral spread to fetal and placental tissues, and conferred protection against virus-mediated fetal demise and placental damage. This is the first study to evaluate a VLP-based vaccine in a consistent pregnancy loss model of ZIKV infection. These findings support the continued development of VLP vaccines as a safe and effective strategy for protecting pregnant individuals and their developing fetuses from ZIKV.

microbiology↗

The TLR7/8 agonist INI-4001 enhances the immunogenicity of a Powassan virus-like-particle vaccine

Powassan virus (POWV) is a pathogenic tick-borne flavivirus that causes fatal neuroinvasive disease in humans. There are currently no approved therapies or vaccines for POWV infection. Here, we develop a POW virus-like-particle (POW-VLP) based vaccine adjuvanted with the novel synthetic Toll-like receptor 7/8 agonist INI-4001. We demonstrate that INI-4001 outperforms both alum and the Toll-like receptor 4 agonist INI-2002 in enhancing the immunogenicity of a dose-sparing POW-VLP vaccine in mice. INI-4001 increases the magnitude and breadth of the antibody response as measured by whole-virus ELISA, induces neutralizing antibodies measured by FRNT, reduces viral burden in the brain of infected mice measured by RT qPCR, and confers 100% protection from lethal challenge with both lineages of POWV. We show that the antibody response induced by INI-4001 is more durable than standard alum, and 80% of mice remain protected from lethal challenge 9-months post-vaccination. Lastly, we show that the protection elicited by INI-4001 adjuvanted POW-VLP vaccine is unaffected by either CD4+ or CD8+ T cell depletion and can be passively transferred to unvaccinated mice indicating that protection is mediated through humoral immunity. This study highlights the utility of novel synthetic adjuvants in VLP-based vaccines. Author summaryPowassan virus (POWV) is an emerging pathogenic tick-borne flavivirus for which there is no vaccine. Current tick-borne flavivirus vaccines are less than ideal and use formalin-inactivated virus adjuvanted with alum. These vaccines require thorough inactivation of the antigen and frequent boosting to maintain immunity. In this study, we describe the development of a POWV vaccine using Powassan virus-like-particles (POW-VLPs) adjuvanted with either of two novel Toll-like receptor (TLR) agonists, the TLR4 agonist INI-2002 or the TLR7/8 agonist INI-4001. We show that INI-4001 enhances the antibody response, reduces POWV neuroinvasion, and elicits full protection from lethal POWV infection in mice prime-boost vaccinated with low doses of POW-VLP. We further show that this protection is mediated by a humoral immune response which is both broader and more durable than a POW-VLP vaccine formulated with alum. These findings demonstrate the effectiveness of the novel synthetic TLR7/8 agonist INI-4001 as an adjuvant for low-dose VLP-based vaccines and the ability of this vaccine platform to improve upon current tick-borne flavivirus vaccine methodology.

immunology↗

Viral microRNA regulation of Akt is necessary for reactivation of Human Cytomegalovirus from latency in CD34+ hematopoietic progenitor cells and humanized mice

Human cytomegalovirus (HCMV) actively manipulates cellular signaling pathways to benefit viral replication. Phosphatidyl-inositol 3-kinase (PI3K)/Akt signaling is an important negative regulator of HCMV replication, and during lytic infection the virus utilizes pUL38 to limit Akt phosphorylation and activation. During latency, PI3K/Akt signaling also limits virus replication, but how this is overcome at the time of reactivation is unknown. Virally encoded microRNAs (miRNAs) are a key component of the virus arsenal used to alter signaling during latency and reactivation. In the present study we show that three HCMV miRNAs (miR-UL36, miR-UL112 and miR-UL148D) downregulate Akt expression and attenuate downstream signaling, resulting in the activation of FOXO3a and enhanced internal promoter-driven IE transcription. A virus lacking expression of all three miRNAs is unable to reactivate from latency both in CD34+ hematopoietic progenitor cells and in a humanized mouse model of HCMV infection, however downregulating Akt restores the ability of the mutant virus to replicate. These findings highlight the negative role Akt signaling plays in HCMV replication in lytic and latent infection and how the virus has evolved miRNA-mediated countermeasures to promote successful reactivation. AUTHOR SUMMARYHuman cytomegalovirus (HCMV) infection results in lifelong persistence of the virus through the establishment of latency, and viral reactivation is a significant cause of morbidity and mortality in solid organ and stem cell transplant patients. HCMV latency is established in CD34+ hematopoietic progenitor cells (HPCs) where the virus manipulates cell signaling pathways to maintain the viral genome and remain poised to reinitiate gene expression under the appropriate conditions, although the molecular mechanisms surrounding these processes are poorly understood. HCMV encodes microRNAs (miRNAs) that modulate expression of hundreds of cellular and viral genes and play important roles in regulating signaling in HPCs. In this study, we show that HCMV miR-UL36, miR-UL112, and miR-UL148D coordinately inhibit Akt expression, activation, and downstream signaling through nonconventional mechanisms. A mutant lacking these miRNAs is unable to reactivate from latency, yet complementing Akt regulation restores the ability of the mutant virus to reactivate, pointing to an important role for miRNA-mediated inhibition of Akt to promote HCMV reactivation.

microbiology↗

Viral and host network analysis of the human cytomegalovirus transcriptome in latency.

HCMV genes UL135 and UL138 play opposing roles regulating latency and reactivation in CD34+ human progenitor cells (HPCs). Using the THP-1 cell line model for latency and reactivation, we designed an RNA sequencing study to compare the transcriptional profile of HCMV infection in the presence and absence of these genes. The loss of UL138 results in elevated levels of viral gene expression and increased differentiation of cell populations that support HCMV gene expression and genome synthesis. The loss of UL135 results in diminished viral gene expression during an initial burst that occurs as latency is established and no expression of eleven viral genes from the ULb region even following stimulation for differentiation and reactivation. Transcriptional network analysis revealed host transcription factors with potential to regulate the ULb genes in coordination with pUL135. These results reveal roles for UL135 and UL138 in regulation of viral gene expression and potentially hematopoietic differentiation.

microbiology↗