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Biology subjects

Joalland, N.

Publications and source records attributed to Joalland, N..

4 recordsLinked to original sources

Functional diversity of Vγ9Vδ2 T cells overcomes glioblastoma state plasticity and antigen heterogeneity

Glioblastoma (GBM) is characterized by a high degree of cellular plasticity and intra-tumoral heterogeneity, which frequently leads to the failure of standard therapies, including immunotherapies. While chimeric antigen receptor (CAR) T cells offer a potent means of MHC-independent tumor recognition, their efficacy is hampered by the coexistence of distinct molecular states, gathered as proneural (PN) and mesenchymal (MES) phenotypes. Here, we demonstrate that gangliosides GD2 and O-acetylated GD2 (OAcGD2) are preferentially expressed by PN cells whereas MES cells display reduced expression due to upregulated ganglioside catabolism. Conversely, MES cells are known to exhibit high expression of stress-induced ligands recognized by V{gamma}9V{delta}2 T cells. We show that while engineering V{delta}2T cells with GD2- or OAcGD2-specific CAR enables the elimination of PN cells, it also facilitates the immune escape of MES cells in heterogeneous 3D-tumoroid models. Mechanistically, we reveal a hierarchy of receptor engagement, where CAR signaling predominates leading to the structural and functional exclusion of endogenous TCR from the immunological synapse. To address this receptor competition, we propose a strategy that leverages the functional effector diversity by combining untransduced and CAR-engineered V{delta}2T cells. This dual approach provides a dynamic safety net by ensuring the simultaneous elimination of PN and MES cells and preventing the selective outgrowth of resistant cells. Our findings establish a conceptual framework for designing off-the-shelf immunotherapies tailored to the metabolic and phenotypic plasticity of resistant solid tumors.

cancer biology↗

Optimized Multiple Amplification Protocol for the Production of Allogeneic Human Vγ9Vδ2 T Lymphocytes for Adoptive Cell Transfer Immunotherapy

Cancer remains a major therapeutic challenge despite substantial advances in diagnosis and treatment, including immune checkpoint blockade. Among emerging immunotherapeutic approaches, adoptive cell transfer (ACT) has attracted growing interest. Human peripheral V{gamma}9V{delta}2 T cells are promising candidates for ACT because they combine rapid and potent antitumor functions with major histocompatibility complex (MHC)-independent tumor recognition, enabling allogeneic use with limited risk of graft-versus-host disease. This raises the possibility of generating standardized V{gamma}9V{delta}2 T-cell banks from healthy donors for off-the-shelf immunotherapy. Here, we provide preclinical evidence supporting the suitability of allogeneic human V{gamma}9V{delta}2 T cells for ACT. We characterized peripheral blood V{gamma}9V{delta}2 T cells from healthy donors after successive antigen-specific and non-specific amplification steps, assessing their phenotype, effector functions, and metabolic state. Amplified cells maintained a strong pro-inflammatory Th1-like profile, preserved cytotoxic activity, and did not produce immunoregulatory cytokines. They also displayed high purity, a predominant effector memory phenotype, reduced expression of several inhibitory immune checkpoints, and sustained antitumor reactivity. Altogether, these findings support the development of allogeneic V{gamma}9V{delta}2 T-cell products as a scalable platform for next-generation cancer immunotherapies.

immunology↗

Pyruvate carboxylation identifies Glioblastoma Stem-like Cells opening new metabolic strategy to prevent tumor recurrence

Glioblastoma (GBM) are currently associated with a dismal prognosis due to therapeutic resistance. Within the diverse tumor subpopulations, Glioblastoma Stem-like Cells (GSC) have been involved in GBM recurrence. In our study, we demonstrated that these tumor cells can be identified through singular mitochondrial alternative metabolisms. Combining state-of-the-art metabolic studies and the development of a straightforward tumoroid model recapitulating key features of primary GBM cultures, we uncovered a significant use of -ketoglutarate reductive carboxylation and pyruvate carboxylation in tumoroid GBM cells, catalyzed respectively by isocitrate dehydrogenase and pyruvate carboxylase enzymes. We demonstrated that these singular metabolic features are shared by GBM cells from the mesenchymal subtype and radiation-escaping cells, also involved in recurrence. Finally, we demonstrated that pyruvate carboxylation is required for GBM cell survival in hypoxic niches where glutamine is restricted. Thus, besides providing a new way to identify GSC, our study also opens new therapeutic strategy to limit GBM recurrence.

cancer biology↗

Mechanistic insights of radiation-induced endothelial senescence impelling glioblastoma genomic instability at relapse

Despite aggressive clinical protocol, all glioblastoma (GBM) recur at the initial site within the irradiated peritumoral microenvironment. Whereas irradiated microenvironment has been recently proposed to accelerate GBM relapse, molecular and cellular mechanisms remain unknown. Here, using relevant in vitro and in vivo models, we decipher how radiation-induced endothelial senescence drives the emergence of aggressive GBM cells. Secretome (SASP) of radiation-induced senescent (RIS) endothelium enhances genomic instability and intratumoral heterogeneity in irradiated GBM cells. In-depth molecular studies revealed that CXCL5 and CXCL8, from the SASP, activate CXCR2 receptor on tumor cells leading to increased DNA hyper-replication, micronuclei formation and aneuploidy. Importantly, through CXCL5/8-CXCR2 axis activation, this SASP increases GBM aggressiveness in vivo. Both chemokines were detected in relapsing, but not primary, GBM biopsies and positively correlated with worst patient outcome. In conclusion, we identify new molecular and preclinical insights of relapsing GBM aggressiveness where RIS vascular niches fuel aggressive tumor emergence.

cancer biology↗