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Munteanu, C. V. A.

Publications and source records attributed to Munteanu, C. V. A..

2 recordsLinked to original sources

Extracellular Vesicles Derived from Activated Dendritic Cells Loaded with Curcumin Promote Early Activation-associated Functional and Molecular Reprogramming of Primary CD8+ T Cells

Extracellular vesicles (EVs) derived from activated dendritic cells (DCs) are promising cell-free mediators capable of shaping CD8+ T-cell responses. However, their early molecular and functional effects on CD8+ T cells remain incompletely characterized, and whether engineering activated DC-derived EVs with immunomodulatory cargo can fine-tune these responses remains largely unexplored. Here, we investigated whether curcumin loading into EVs derived from CpG-activated and peptide-pulsed DC2.4 cells (EV-ACT) modulates early activation of primary CD8+ T cells. EVs were isolated by ultrafiltration coupled with size-exclusion chromatography (UF-SEC) and characterized physicochemically and molecularly. Exploratory proteomic profiling identified an activation-associated EV protein signature enriched in antigen-processing and immune-related pathways. Curcumin loading achieved an encapsulation efficiency of 16.4% while preserving EV properties, and spectral confocal fluorescence microscopy revealed heterogeneous fluorescence emission patterns consistent with distinct EV-associated curcumin microenvironments. Following rapid cellular association, EV-ACT promoted early CD8+ T-cell activation, inducing an effector-like phenotype characterized by increased CD69 expression, TNF- and Granzyme B production, and reduced Bcl-2 levels without compromising cell viability. Unlike free curcumin, EV-mediated curcumin delivery selectively reinforced these immunostimulatory responses by significantly increasing CD69 expression and STAT3 phosphorylation, sustaining early activation-associated functional and molecular reprogramming of primary CD8+ T cells.

cell biology↗

Structure and function of the EDEM:PDI ERAD checkpoint complex

The ERAD-L checkpoint complex de-mannosylates misfolded glycoproteins with lumenal defects, targeting them to retrotranslocation, ubiquitination, and proteasomal degradation. Commitment to ERAD-L requires an Endoplasmic Reticulum-Degradation Enhancing alpha-Mannosidase-like protein (EDEM) and its associated Protein Disulfide Isomerase (PDI). We determined Cryo-EM structures of the Chaetomium thermophilum EDEM:PDI heterodimer, both by itself and in complex with a classic ERAD substrate, the alpha1-antitrypsin Null Hong Kong mutant (A1AT-NHK). The EDEM catalytic domain nestles within the PDI arc. One intermolecular disulfide, between the a' domain of PDI and the first conserved cysteine of the EDEM linker (Cys A), stably links the two proteins. A second intermolecular disulfide, between the second conserved cysteine of the EDEM linker (Cys B) and the PDI a domain, stabilises the compact apo conformation. In the substrate-bound complex, the Cys B intermolecular disulfide is reduced and the catalytic CXXC motif of the PDI a domain oxidised. Release of the Cys B linkage increases the conformational freedom of the EDEM linker, allowing the EDEM C-terminal domains to adopt both proximal and distal conformations relative to the catalytic domain. The structures provide a framework for discovery of EDEM:PDI modulators, with potential applications in virology, rare genetic disease and cancer, and as reagents for glycoprotein quality-control engineering.

biochemistry↗