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Fairweather, D.

Publications and source records attributed to Fairweather, D..

3 recordsLinked to original sources

Investigating the potential role of capsaicin in facilitating the spread of coxsackievirus B3 via extracellular vesicles

Coxsackievirus B3 (CVB3) is a non-enveloped picornavirus that can cause systemic inflammatory diseases including myocarditis, pericarditis, pancreatitis, and meningoencephalitis. We have previously reported that following infection, CVB3 localizes to mitochondria, inducing mitochondrial fission and mitophagy, while inhibiting lysosomal degradation by blocking autophagosome-lysosome fusion. This results in the release of virus-laden mitophagosomes from the host cell as infectious extracellular vesicles (EVs) which allow non-lytic viral egress. Transient receptor potential vanilloid 1 (TRPV1/TRPV1) is a heat and capsaicin-sensitive cation channel that regulates mitochondrial dynamics by inducing mitochondrial membrane depolarization and fission. In this study, we found that treating cells with the TRPV1 agonist capsaicin dramatically enhances CVB3 egress via EVs. Analysis of the released EVs revealed increased levels of viral capsid protein VP1/VP1, mitochondrial protein TOM70/TOMM70, and fission protein phospho-DRP1/DNM1L (Ser 616). Moreover, these EVs exhibited increased levels of heat shock protein HSP70/HSPA1A, suggesting a potential role of these chaperones in facilitating infectious EV release from cells. Furthermore, TRPV1 inhibition with capsazepine significantly reduced viral infection in vitro. We previously observed similar effects in vitro with another TRPV1 inhibitor SB-366791. Our current in vivo studies found that SB-366791 significantly mitigates pancreatic damage and reduces viral titers in mouse model of CVB3 pancreatitis. Given the lack of understanding regarding the factors that contribute to diverse clinical manifestations of CVB3, our study highlights capsaicin and TRPV1 as potential exacerbating factors that facilitates CVB3 dissemination via mitophagy-derived EVs. IMPORTANCECVB3 is a prevalent pathogen responsible for a range of severe diseases, including myocarditis, pericarditis, pancreatitis, and meningoencephalitis. Despite its clinical significance, factors that determine the severity of CVB3 infection and why some individuals experience life-threatening manifestations while others have mild, cold-like symptoms remain poorly understood. This study provides new insights into the molecular mechanisms underlying CVB3 dissemination and pathogenesis. By investigating the role of capsaicin, a common dietary component, in modulating viral spread, we demonstrate that activation of TRPV1 by capsaicin enhances release of infectious CVB3 via mitophagy-derived EVs. Our results offer novel evidence that modulating TRPV1 activity could influence the clinical outcomes of CVB3 infection, opening new avenues for therapeutic interventions. Given the widespread consumption of capsaicin, this study highlights an important dietary factor that could play a role in shaping CVB3 pathogenesis and its clinical manifestations, underscoring the potential for targeted strategies to mitigate severe disease outcomes.

microbiology↗

From Cardiac Myosin to the Beta Receptor: Autoantibodies Promote a Fibrotic Transcriptome and Reduced Ventricular Recovery in Human Myocarditis

BackgroundMyocarditis leads to dilated cardiomyopathy (DCM) with one-third failing to recover normal ejection fraction (EF50%), and there is a critical need for prognostic biomarkers to assess risk of nonrecovery. Cardiac myosin (CM) autoantibodies (AAbs) cross-reactive with the {beta}-adrenergic receptor ({beta}AR) are associated with myocarditis/DCM, but their potential for prognosis and functional relevance is not fully understood. MethodsCM AAbs and myocarditis-derived human monoclonal antibodies (mAbs) were investigated to define pathogenic mechanisms and CM epitopes of nonrecovery. Myocarditis patients who do not recover ejection fraction (EF<50%) by one year were studied in a longitudinal (n=41) cohort. Sera IgG and human mAbs were investigated for autoreactivity with CM and CM peptides by ELISA, protein kinase A (PKA) activation, and transcriptomic analysis in H9c2 heart cell line. ResultsCM AAbs were significantly elevated in nonrecovered compared to recovered patients and correlated with reduced EF (<50%). CM epitopes specific to nonrecovery were identified. Transcriptomic analysis revealed serum IgG and mAb 2C.4 induced fibrosis/apoptosis pathways in vitro similar to isoproterenol treated cells. Sera IgG and 2C.4 activated PKA in an IgG and {beta}AR-dependent manner. Endomyocardial biopsies from myocarditis/DCM revealed IgG+ trichrome+ tissues. ConclusionsCM AAbs were significantly elevated in nonrecovered patients, suggesting novel prognostic relevance. CM AAbs correlated with lower EF, and Ab-induced fibrosis/apoptosis pathways suggested a role for CM AAbs in patients who do not recover and develop irreversible heart failure. Homology between CM and {beta}ARs supports mechanisms related to cross-reactivity of CM AAbs with the {beta}AR, a potential AAb target in nonrecovery.

immunology↗

Alterations of PINK1-PRKN signaling in mice during normal aging

The ubiquitin kinase-ligase pair PINK1-PRKN identifies and selectively marks damaged mitochondria for elimination via the autophagy-lysosome system (mitophagy). While this cytoprotective pathway has been extensively studied in vitro upon acute and complete depolarization of mitochondria, the significance of PINK1-PRKN mitophagy in vivo is less well established. Here we used a novel approach to study PINK1-PRKN signaling in different energetically demanding tissues of mice during normal aging. We demonstrate a generally increased expression of both genes and enhanced enzymatic activity with aging across tissue types. Collectively our data suggest a distinct regulation of PINK1-PRKN signaling under basal conditions with the most pronounced activation and flux of the pathway in mouse heart compared to brain or skeletal muscle. Our biochemical analyses complement existing mitophagy reporter readouts and provide an important baseline assessment in vivo, setting the stage for further investigations of the PINK1-PRKN pathway during stress and in relevant disease conditions.

neuroscience↗