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Biology subjects

McGovern, M.

Publications and source records attributed to McGovern, M..

3 recordsLinked to original sources

Enhancing HIPEC for Ovarian Cancer using Adjunctive Biomaterials

Ovarian cancer is one of the most lethal gynecological malignancies, with high mortality rates primarily due to late-stage diagnoses and extensive peritoneal metastases. Despite improvements in surgical and chemotherapeutic treatments, the prognosis for advanced ovarian cancer remains poor, highlighting the urgent need for innovative therapeutic approaches. Hyperthermic intraperitoneal chemotherapy (HIPEC) has emerged as a promising treatment, delivering heated chemotherapeutic agents directly into the peritoneal cavity post-cytoreductive surgery. However, HIPEC adoption is limited by three critical complications: suboptimal therapeutic efficacy in resistant tumors; abdominal adhesion formation; and systemic toxicity, including cisplatin-induced nephrotoxicity. This study investigates carbon monoxide gas- entrapping materials (CO-GEMs) as a novel multifunctional adjunctive therapy to address the three HIPEC limitations simultaneously. CO-GEMs effectively encapsulate and deliver carbon monoxide, leveraging the differential effects of CO in cancerous where it has been shown to reduce tumor burden. In ovarian cancer models, CO-GEMs significantly enhanced cisplatin efficacy, reducing the metastatic tumor burden by 46.6% through the downregulation of drug resistance pathways, including the IL-17, TNF, and NF-{kappa}B pathways; ECM receptor interaction, and VEGF signaling. CO-GEMs also prevented peritoneal adhesion formation by suppressing inflammatory cell infiltration and collagen deposition, with a significant reduction in adhesion severity scores. Additionally, enteral CO-GEMs provided significant nephroprotection against cisplatin-induced acute kidney injury, as demonstrated by reduced blood urea nitrogen levels. CO-GEMs represent a promising innovation that simultaneously improves HIPEC therapeutic efficacy, prevents surgical complications, and reduces systemic toxicity. This multifunctional approach addresses multiple clinical limitations of HIPEC, potentially transforming treatment outcomes for patients with advanced ovarian cancer through an enhanced therapeutic index and improved safety profile.

bioengineering↗

DEVELOPMENT OF A POTENT MONOCLONAL ANTIBODY FOR TREATMENT OF HUMAN METAPNEUMOVIRUS INFECTIONS

Human metapneumovirus (HMPV) is a major cause of respiratory infections, particularly among vulnerable populations, yet effective therapeutics remain unavailable. Monoclonal antibodies (mAbs) offer a promising approach for both treatment and prevention. Here, we describe the discovery and characterization of 4F11, a highly potent and broadly neutralizing mAb with demonstrated in vitro and in vivo efficacy against HMPV. Using cryo-electron microscopy, we defined a unique mechanism of binding HMPV employed by 4F11, which distinguishes it from previously characterized RSV and HMPV mAbs. 4F11 targets an epitope located at the apex of the prefusion F protein (site O) with a 1:1 stoichiometry, distinct from the 3:1 stoichiometry observed with other HMPV site O antibodies. Unlike other site O antibodies, which penetrate the glycan shield between Asn57 and Asn172, 4F11 binds vertically and directly interacts with the Asn172 glycan, representing a unique glycan-dependent mode of recognition. In vitro, 4F11 displayed high potency and broad neutralization across diverse HMPV strains. It also showed a low propensity for resistance development, with only a single escape mutation (K179E) identified, a mutation not found in any published HMPV sequence to date. Viruses rescued with the K179E escape mutation had significantly decreased fitness in vitro compared to wild-type virus. In a hamster challenge model, 4F11 significantly reduced viral loads in both the lungs and nasal turbinates. These findings highlight 4F11 as a promising candidate for therapeutic development, particularly for immunocompromised individuals and other high-risk groups.

immunology↗

Rewiring of the host cell metabolome and lipidome during lytic gammaherpesvirus infection is essential for infectious virus production

Oncogenic virus infections are estimated to cause [~]15% of all cancers. Two prevalent human oncogenic viruses are members of the gammaherpesvirus family: Epstein Barr Virus (EBV) and Kaposis Sarcoma Herpesvirus (KSHV). We use murine herpesvirus 68 (MHV-68), which shares significant homology with KSHV and EBV, as a model system to study gammaherpesvirus lytic replication. Viruses implement distinct metabolic programs to support their life cycle, such as increasing the supply of lipids, amino acids, and nucleotide materials necessary to replicate. Our data define the global changes in the host cell metabolome and lipidome during gammaherpesvirus lytic replication. Our metabolomics analysis found that MHV-68 lytic infection induces glycolysis, glutaminolysis, lipid metabolism, and nucleotide metabolism. We additionally observed an increase in glutamine consumption and glutamine dehydrogenase protein expression. While both glucose and glutamine starvation of host cells decreased viral titers, glutamine starvation led to a greater loss in virion production. Our lipidomics analysis revealed a peak in triacylglycerides early during infection and an increase in free fatty acids and diacylglyceride later in the viral life cycle. Furthermore, we observed an increase in the protein expression of multiple lipogenic enzymes during infection. Interestingly, pharmacological inhibitors of glycolysis or lipogenesis resulted in decreased infectious virus production. Taken together, these results illustrate the global alterations in host cell metabolism during lytic gammaherpesvirus infection, establish essential pathways for viral production, and recommend targeted mechanisms to block viral spread and treat viral induced tumors. IMPORTANCEViruses are intracellular parasites which lack their own metabolism, so they must hijack host cell metabolic machinery in order to increase the production of energy, proteins, fats, and genetic material necessary to replicate. Using murine herpesvirus 68 (MHV-68) as a model system to understand how similar human gammaherpesviruses cause cancer, we profiled the metabolic changes that occur during lytic MHV-68 infection and replication. We found MHV-68 infection of host cells increases glucose, glutamine, lipid, and nucleotide metabolic pathways. We also showed inhibition or starvation of glucose, glutamine or lipid metabolic pathways results in an inhibition of virus production. Ultimately, targeting changes in host cell metabolism due to viral infection can be used to treat gammaherpesvirus induced cancers and infections in humans.

microbiology↗