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Cripe, T. P.

Publications and source records attributed to Cripe, T. P..

2 recordsLinked to original sources

Trabectedin Enhances Oncolytic Virotherapy by Reducing Barriers to Virus Spread and Cytotoxic Immunity in Preclinical Pediatric Bone Sarcoma

We previously reported that the DNA alkylator and transcriptional-blocking chemotherapeutic agent trabectedin enhances oncolytic herpes simplex viroimmunotherapy in human sarcoma xenograft models, though the mechanism remained to be elucidated. Here we report trabectedin disrupts the intrinsic cellular anti-viral response which increases viral transcript spread throughout the human tumor cells. We also extended our synergy findings to syngeneic murine sarcoma models, which are poorly susceptible to virus infection. In the absence of robust virus replication, we found trabectedin enhanced viroimmunotherapy efficacy by reducing immunosuppressive macrophages and stimulating granzyme expression in infiltrating T and NK cells to cause immune-mediated tumor regressions. Thus, trabectedin enhances both the direct virus-mediated killing of tumor cells and the viral-induced activation of cytotoxic effector lymphocytes to cause tumor regressions across models. Our data provide a strong rationale for clinical translation as both mechanisms should be simultaneously active in human patients.

cancer biology↗

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↗