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Biology subjects

Saveanu, L.

Publications and source records attributed to Saveanu, L..

4 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↗

Intra-tumoral delivery of FLT3L with CXCR3/CCR5 ligands promotes XCR1+ DC1 infiltration and activates anti-tumor immunity

Tumor infiltration by XCR1 conventional dendritic cells (cDC1) correlates strongly with favorable prognosis and improved responses to immunotherapy. Yet, tumor-driven immunosuppressive programs restrict efficient cDC1 recruitment, highlighting the need for strategies increasing cDC1 access to the tumor microenvironment. Here, we establish a proof-of-concept cell-based immunotherapy that enhances the infiltration of circulating cDC1 progenitors and supports their local expansion. Intratumoral engraftment of autologous mesenchymal stromal cells engineered to express membrane bound FLT3L promotes cDC1 recruitment when combined with poly(I:C). We identify poly(I:C)-induced CXCL9 and CCL5 as essential chemokines controlling intratumoral cDC1 infiltration. Stromal cell-mediated local delivery of FLT3L together with CXCL9 and CCL5 is sufficient to enhance cDC1 infiltration in mice or humanized mice settings. Finally, this approach activates antitumor immunity and partially overcomes resistance to immune checkpoint blockade. Collectively, our data support the therapeutic potential of expanding intratumoral cDC1s through local and sustained delivery of FLT3L, CXCL9, and CCL5.

immunology↗

The Rab32 small GTPase is required for efficient cross-priming of CD8+ T cellsagainst cell-associated antigens by XCR1+ type 1 DCs in vivo.

Type 1 conventional dendritic cells (cDC1s) are critical for initiating adaptive immune responses through the cross-priming of CD8 T cells against antigens from tumor or virus-infected cells. This function depends on specialized cross-presentation pathways that allow cDC1s to process phagocytosed cell debris and present peptide-MHC I complexes. In this study, we identify the small GTPase Rab32 as being highly and selectively over-expressed in cDC1s as compared to cDC2s. While cDC1s from Rab32-deficient mice develop normally and can respond to maturation signals, their capacity to activate CD8 T cells in vivo is impaired. Notably, Rab32- deficient cDC1s retain the ability to stimulate TCR transgenic CD8 T cells ex vivo using both cell-associated antigens and MHC I-binding peptides of varying affinity. However, in vivo, Rab32 is essential for effective CD8 T cell responses to cell-associated antigens, independent of Rab32 expression in T cells themselves. Importantly, Rab32-mediated cross-priming is required for the efficient expansion of tumor-specific CD8 T cells into solid tumors. These findings underscore a critical role for Rab32 in cDC1-mediated cross-priming, highlighting the contribution of non-antigen processing vesicular pathways in shaping CD8 T cell responses to cellular antigens.

immunology↗

Fc immunoreceptors promote autophagy to regulate monocyte functions

Receptors for the Fc fragment of immunoglobulin G (FcyRs) are critical in the defense against pathogens and in monoclonal antibody-based therapies. When activated by immune complexes or opsonized particles, FcyRs are endocytosed. Components of the endocytosis machinery are used during autophagy, a process which is triggered by starvation or by activation of specific receptors. In this work, we demonstrate that activation of FcyRs initiates autophagy, characterized by formation of p62 protein puncta and activation of ULK1, a major component of the autophagy initiation complex. Autophagy induction downstream of FcyRs activation involves the protein phosphatase Pp2a and its enzymatic activity, as demonstrated by in situ protein labeling. In animal models in which autophagy was inactivated or enhanced in myeloid cells, autophagy negatively regulates pro-inflammatory cytokine production downstream of FcyRs receptors, while being required for FcyRs -mediated antibody-induced cell phagocytosis and myeloid cell survival. Our results suggest that, for antibody-based therapeutic strategies that target the activation of FcyRs, an additional level of control can be obtained by manipulation of autophagy.

cell biology↗