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Panetti, S.

Publications and source records attributed to Panetti, S..

3 recordsLinked to original sources

Systemic viral vector vaccination induces brain resident memory T cells to drive anti-glioblastoma immunity

Glioblastoma is a lethal brain tumor that is unresponsive to current cancer immunotherapeutic approaches, including immune checkpoint blockade (ICB). This suggests that initial priming of T cells, rather than their expansion and licensing as effectors, is a restricting feature in this tumor setting. To overcome the limited initiation of CD8+ T cell responses, we employed a strong heterologous prime-boost vaccination with the simian adenovirus ChAdOx1 and poxvirus modified vaccinia Ankara (MVA). Vaccination conferred therapeutic efficacy against orthotopic, immune checkpoint-blockade (ICB)-refractory SB28 murine glioblastoma. Vaccination was effective against both the murine tumor antigen, P1A, and a newly identified glioblastoma-associated antigen, Gpr149. Additional treatment with ICB provided no additional benefit. Systemic ChAdOx1/MVA vaccination induced robust infiltration of antigen-specific T cells in tumor-challenged brains, the majority of which exhibited a CD103+CD69+CD8+ tissue-resident memory (TRM)-like phenotype. These cells were polyfunctional, durable in brains with sustained tumor control, and mediated tissue-specific immunological memory. Moreover, intracranial adoptive transfer of glioblastoma-derived antigen-specific TRM-like cells was sufficient to protect naive recipients from subsequent orthotopic tumor challenge. Together, these findings establish that viral vector vaccination can generate tumor-specific TRM-like cells that mediate effective anti-glioblastoma immunity, providing a rationale for clinical evaluation of ChAdOx1/MVA-based strategies in glioblastoma.

immunology↗

TMEM33 deletion potentiates anti-tumor CD8+ T cell immunity

Improving responses to cancer immunotherapies requires deeper insight into the cellular mechanisms governing T cell-mediated anti-tumor immunity. TMEM33 is an endoplasmic reticulum-resident transmembrane protein enriched across multiple tumor types, with reported functions in anti-viral immunity as well as calcium and lipid homeostasis, yet its role in tumor immunosurveillance remains unknown. Using murine genetic models, we demonstrate that host TMEM33 constrains anti-tumor CD8+ T cell responses. Constitutive Tmem33-/- mice exhibited delayed melanoma tumor growth and increased CD8+ T cell infiltration. Antigen-specific CD8+ compartments in tumors of Tmem33-/- mice showed TCF-1+PD-1+ progenitor-exhausted cell (Tpex) enrichment, elevated effector function and reduced exhaustion, alongside improved effector memory expansion and T-bet expression in draining lymph nodes. We highlight that TMEM33 functions intrinsically within the T cell compartment, as TMEM33 deletion (1) enhanced polyclonal activation of naive CD8+ T cells ex vivo, (2) promoted preferential Tpex accumulation among adoptively transferred naive OT-I cells in B16F10-OVA tumors and draining lymph nodes, and (3) improved the potency of ex vivo-expanded OT-I cells in controlling tumor growth during adoptive cell therapy. Finally, in a large, prospectively recruited metastatic melanoma cohort, lower TMEM33 expression in patient CD8+ T cells significantly correlated with improved survival and elevated TCF-7 (encoding TCF-1). Collectively, our findings define TMEM33 as a formerly unrecognized intrinsic determinant of tumor-directed CD8+ T cell fate that limits Tpex maintenance, and restrains cell therapy responses, suggesting that its modulation may strengthen immunotherapeutic efficacy. One sentence summaryTMEM33 intrinsically limits progenitor exhausted CD8+ T cells, scales anti-tumor responses and predicts melanoma patient survival.

immunology↗

Chemotherapy synergizes with cancer vaccines and expands stem-like TCF1+CD8+ T cells

Therapeutic cancer vaccines, whether based on neoantigens or shared antigens, will likely be given in the clinic together with the standard of care, which often comprises immune checkpoint blockade therapy and chemotherapy. It remains unclear, however, whether vaccines effectively synergize with chemotherapy. Here, we tested the combination of a heterologous prime-boost viral vector vaccine with chemotherapy (CarboTaxol) and anti-PD- 1. We show that this triple combination improves tumor control and survival in different murine tumor models. CarboTaxol, and also cyclophosphamide, acted as an immune adjuvant for the vaccines, enhancing tumor-specific CD8+ T-cell responses, irrespective of the presence of a tumor. These chemotherapies expanded stem-like T cell factor 1 (TCF1)+CD8+ T cells. Inhibition of the transcriptional activity of TCF1/{beta}-catenin with a small molecule inhibitor abolished the immune adjuvant effect of CarboTaxol. This study sheds light on the new immunomodulatory roles of chemotherapies and holds promises for clinical testing of this combination strategy. HighlightsO_LIThe combination of CarboTaxol with viral vector cancer vaccines and anti-PD-1 promotes better tumor control, tumor clearance, and survival C_LIO_LICarboTaxol increases TCF1 expression in CD8+ T cells and expands stem-like TCF1+CD8+ T cells C_LIO_LICarboTaxol acts as an adjuvant for cancer vaccines irrespective of the presence of a tumor and this effect is mediated by TCF1/{beta}-catenin activity C_LI

immunology↗