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Bochler, L.

Publications and source records attributed to Bochler, L..

5 recordsLinked to original sources

Therapeutic poxviruses induce the secretion of immunostimulating and anti-tumoral extracellular vesicles

Poxvirus-based vectors provide a versatile cancer immunotherapy platform, enabling the expression of immunostimulatory molecules and cancer-specific antigens. While infections with pathogenic viruses are well known to modulate extracellular vesicle (EV) biogenesis and function, the extent to which therapeutic poxviral vectors influence EV secretion by immune cells and thereby affect therapeutic efficacy remains underexplored. In this study, we showed that poxviruses, including the clinically relevant Modified Vaccinia Ankara (MVA), stimulate the secretion of small EVs (sEVs) containing viral proteins and immune-related signatures from peripheral blood mononuclear cells (PBMCs). Using an engineered MVA vector, we demonstrated the transfer of virus-encoded therapeutic payloads to sEVs, including the model ovalbumin (OVA)-derived peptide SIINFEKL presented by the class I major histocompatibility complex (MHC I) and the immune activators interleukin-12 (IL-12) and CD40 ligand (CD40L). Depending on the isolation method, these sEVs stimulated SIINFEKL-specific CD8 T cells with varying efficiencies in vitro. Remarkably, intravenous injection of these sEVs into E.G7-OVA lymphoma-bearing mice reduced tumor growth to an extent comparable to the virus itself. Taken together, our findings indicate that EVs released from immune cells infected with engineered therapeutic poxviruses exert potent antitumor activity. These vesicles represent actionable mediators whose secretion and functionalization can be harnessed to improve viral vector-based immunotherapies, as well as being considered as therapeutic vectors in their own. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=95 SRC="FIGDIR/small/677320v1_ufig1.gif" ALT="Figure 1"> View larger version (20K): org.highwire.dtl.DTLVardef@1eae18borg.highwire.dtl.DTLVardef@17d6fb5org.highwire.dtl.DTLVardef@311577org.highwire.dtl.DTLVardef@7839c7_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗

Tumoral CD24 tunes platelets binding and pro-metastatic functions

One of the earliest steps of breast cancer metastasis occurs when tumor cells (TCs) disseminate through the bloodstream. There, they interact with several blood components. Among them, platelet favor TC survival and metastatic spread. While the binding of platelet to TC is highly variable, its molecular controls and downstream consequences remain unidentified. Here, we first document that high CD24 expression correlates with increased platelet binding and poorer survival in breast cancer. We further demonstrate that CD24-mediated platelet binding regulates TC cluster formation and resistance to anoikis in vitro. Depleting CD24 expression significantly reduces TC metastatic potential by rewiring the metastatic tumor microenvironment (mTME), affecting immune compartments and secreted factors. Overall, our work identifies CD24 as a molecular cue controlling TC-platelet interaction, dictating their metastatic potential. As such, it represents a druggable target to counteract platelet-TC collaboration in metastasis.

cancer biology↗

Depletion of all platelet integrins impacts hemostasis, thrombosis and tumor metastasis

Platelet integrins, in addition to other platelet receptors, are known to control hemostasis, thrombosis but also metastatic progression. Yet, their exclusive but combined deficiency has never been tested in these processes. Taking advantage of PF4Cre-{beta}1-/-/{beta}3-/- mouse strain, we show that platelets are exclusively depleted for all integrins. While they displayed impaired binding to fibrinogen and annexin-V, P-selectin exposure was normal. Platelet adhesion was abrogated on immobilized fibrinogen and fibrillar fibronectin under shear flow. PF4Cre-{beta}1-/- /{beta}3-/- mice presented an increased bleeding time and a profound defect in experimental models of arterial thrombosis. Platelet adhesion to tumor cells was also reduced, with a profound impact on tumor growth and metastatic burden in a model of triple negative breast cancer. Overall, these results confirm the central role of platelet integrins in hemostasis and thrombosis, and define their role in tumor growth and metastasis formation. 40-word summary: Depletion of all platelet integrins in PF4Cre-{beta}1-/-/{beta}3-/- mice leads to increased bleeding time and inhibits in vivo arterial thrombosis. Integrin-null platelets reduce tumor growth and metastatic burden in orthotopic and experimental metastasis models. Platelet integrins control hemostasis, thrombosis and metastasis.

cancer biology↗

Nanomaterials trigger functional responses in primary human immune cells

Targeting the immune system with nanoparticles (NPs) to deliver immunomodulatory molecules emerged as a solution to address intra-tumoral immunosuppression and enhance therapeutic response. While the potential of nanoimmunotherapies in reactivating immune cells has been evaluated in several preclinical studies, the impact of drug-free nanomaterials on the immune system remains unknown. Here, we characterize the molecular and functional response of human NK cells and pan T cells to a selection of five NPs that are commonly used in biomedical applications. After a pre-screen to evaluate the toxicity of these nanomaterials on immune cells, we selected ultrasmall silica-based gadolinium (Si-Gd) NPs and poly(lactic-co-glycolic acid) (PLGA) NPs for further investigation. Bulk RNA-sequencing and flow cytometry analysis showcase that PLGA NPs trigger a transcriptional priming towards activation in NK and pan T cells. While PLGA NPs improved NK cells anti-tumoral functions in cytokines-deprived environment, Si-Gd NPs significantly impaired T cells activation as well as functional responses to a polyclonal antigenic stimulation. Altogether, we identified PLGAs NPs as suitable and promising candidates for further targeting approaches aiming to reactivate the immune system of cancer patients.

immunology↗

Cell viscosity influences hematogenous dissemination and metastatic extravasation of tumor cells

Metastases arise from a multi-step process during which tumor cells change their mechanics in response to microenvironmental cues. While such mechanical adaptability could influence metastatic success, how tumor cell mechanics directly impacts intravascular behavior of circulating tumor cells (CTCs) remains poorly understood. In the present study, we demonstrate how the deformability of CTCs affects hematogenous dissemination and identify the mechanical profiles that favor metastatic extravasation. Combining intravital microscopy with CTC-mimicking elastic beads and mechanically-tuned tumor cells, we demonstrate that the inherent properties of circulating objects dictate their ability to enter constraining vessels. We identify cellular viscosity as the key property that governs CTC circulation and arrest patterns. We further demonstrate that cellular viscosity is required for efficient extravasation and find that properties that favor extravasation and subsequent metastatic outgrowth can be opposite. Altogether, we identify CTC viscosity as a key biomechanical parameter that shapes several steps of metastasis.

cancer biology↗