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Fadda, P.

Publications and source records attributed to Fadda, P..

2 recordsLinked to original sources

Genetically modified IL-2 bone marrow-derived myeloid cells reprogram the glioma immunosuppressive tumormicroenvironment

Gliomas are the most prevalent type of brain tumors and one of the leading causes of cancer-related death in the adolescent and young adult population (AYA). Two-thirds of glioma AYA patients are affected by low-grade gliomas (LGGs), but there are no specific treatments. Therefore, a percentage of LGG patients experience tumor relapse and malignant progression to high-grade glioma which leads to fatal outcomes. In part, malignant progression is potentiated by the immunosuppressive stromal component of the tumor microenvironment (TME) underscored by M2-macrophages and a paucity of cytotoxic T cells. As a result, first-line immunotherapies have failed to improve outcomes for patients with progressive high-grade gliomas. Here, we report the efficacy of an in vivo approach that demonstrates the potential for a novel cell-mediated innate immunotherapy designed to abrogate immunosuppressive mechanisms within the glioma TME and enhance the recruitment of activated effector T cells. A single dose of engineered bone marrow-derived myeloid cells that release Interleukin-2 (GEMys-IL2) was used systemically to treat mice with LGG tumors systemically. Our results demonstrate that GEMys-IL2 efficiently crossed the blood brain barrier (BBB), infiltrated the glioma microenvironment, and reprogrammed the infiltrating immune cell composition and transcriptome. In addition, GEMys-IL2 impaired tumor progression and extended survival in a LGG immunocompetent mouse model. In conclusion, we demonstrated that GEMys-IL2 have a therapeutic effect in vivo, thus supporting its potential application as a novel immunotherapy that warrants further investigation.

cancer biology↗

A concurrent canonical and modified miRNAome pan-cancer study on TCGA and TARGET cohorts leads to an enhanced resolution in cancer

MiRNA Epitranscriptomics has placed a new layer of complexity in the cancer field. Despite the fast-growing interest in miRNA editing and shifted miRNA isoforms, a simultaneous study of both modifications in cancer is still missing. Here, we concurrently profiled multiple miRNA modifications, including A-to-I RNA editing and shifted miRNA isoforms, in >13K adult and pediatric tumor samples across 38 distinct cancer cohorts from The Cancer Genome Atlas and The Therapeutically Applicable Research to Generate Effective Treatments datasets. We investigated the differences among canonical miRNAs and the wider miRNAome in terms of expression, clustering, dysregulation, and prognostic standpoint. The combination of canonical miRNAs/miRNA isoforms boosted the quality of clustering results, outlining unique cohorts clinical-pathological features. We described modified miRNAs showing opposite dysregulation with respect to their canonical counterparts in cancer, potentially impacting their targetome and function. The abundance of expressed miRNA isoforms directly impacted the activation/deactivation of critical carcinogenesis pathways. Finally, we experimentally validated unique targeting for a shifted and edited miRNA isoform. Our findings outlined once more the importance of going beyond the well-established paradigm of one-mature-miRNA per miRNA arm to elucidate novel mechanisms related to cancer progression.

cancer biology↗