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D. Zepeda-Orozco

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Jul 2026

AAV.hBAG3 Gene Therapy Improves Phenotype in a Valosin Containing Protein Mouse Model of Hereditary Inclusion Body Myositis.

Mutations in the valosin-containing protein (VCP) gene lead to a hereditary type of inclusion body myositis (hIBM), in which sarcoplasmic and myonuclear inclusions with TAR DNA-binding protein 43 (TDP-43) pathology and mitochondrial abnormalities are observed in histological analysis. Pathophysiological conditions in the cell cause the protein quality control system to depend on the autophagy-lysosome pathway (ALP) for degradation of accumulated misfolded proteins and mitochondrial turnover. BCL2-associated athanogene 3 (BAG3) protein has a role in initiating the ALP. Our aim was to ameliorate disease processes resulting from mitochondrial abnormalities and misfolded protein aggregation by upregulating the ALP through overexpression of human BAG3 (hBAG3). The VCP-A232E mouse, a model for hIBM, received AAVrh74.tMCK.hBAG3 systemically at 3 months of age, and outcome measures, including functional, histological, and molecular studies, were assessed 9 months post-gene delivery. hBAG3 treatment improved treadmill running distance and rotarod duration, reduced the number of TDP-43-positive aggregates, and decreased the number of fibers showing abnormalities in mitochondrial enzyme histochemistry, compared with the untreated cohort. Moreover, hBAG3 gene therapy resulted in improvements in mitophagy and mitochondrial homeostasis observed as increased levels in mitophagy markers Parkin and Bnip3, mitochondria biogenesis marker Pgc1α and mitochondrial DNA-encoded subunits of complex IV, Cox1 and Cox3. In addition, the LC-II/I ratio increased, indicating increased autophagic flux. Our study presents evidence that the strategy of supporting the ALP system by overexpressing BAG3 has potential therapeutic use for myodegenerative conditions associated with abnormal protein aggregates and mitochondrial turnover.

B. Ozes, Lingying Tong, M. Myers et al. · 0 citations
Open access Jul 2026

Human seminal plasma suppresses neutrophil antimicrobial functions and promotes bacterial survival

Human seminal plasma (HSP) plays an important role in shaping the reproductive immune environment, but its effects on modulating neutrophil antimicrobial functions and pathogen clearance remain unclear. In this study, we investigated the immunomodulatory effects of HSP on key neutrophil effector responses, including reactive oxygen species (ROS) production, neutrophil extracellular trap (NET) formation, phagocytosis, and bacterial killing. Human neutrophils were stimulated with calcium ionophore A23187, phorbol 12-myristate 13-acetate (PMA), or uropathogenic Escherichia coli (UPEC) in the presence or absence of HSP. In addition, neutrophils from NOX2- and PAD4-knockout mice were used to elucidate the molecular pathways underlying HSP-mediated regulation of NETosis. HSP significantly suppressed ROS production and NET formation induced by A23187, PMA, and UPEC, while also reducing neutrophil phagocytic capacity and impairing bacterial killing. Mechanistically, HSP-mediated inhibition of NETosis was found to be PAD4-dependent but NOX2-independent. Furthermore, the inhibitory effect of HSP on PMA-stimulated human neutrophils was diminished when HSP was obtained from donors pretreated with acetylsalicylic acid, which significantly reduced prostaglandin E2 levels in HSP. Consistent with this observation, pharmacological blockade of prostaglandin signaling restored ROS production in HSP-treated neutrophils. Overall, these findings identify HSP as a physiological inhibitor of neutrophil effector functions and support a role for HSP in maintaining immune homeostasis and tolerance within the reproductive tract through the suppression of neutrophil oxidative burst, NET formation, and antimicrobial activity.

Gabriel Mayoral-Andrade, Gabriela Vasquez-Martinez, Israel Cotzomi-Ortega et al. · 0 citations