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Biology subjects

Ilut, L.

Publications and source records attributed to Ilut, L..

2 recordsLinked to original sources

Neural Stem Cells Secreting Bispecific T Cell Engager to Induce Selective Anti-Glioma Activity

Glioblastoma (GBM) is the most lethal primary brain tumor in adults. There is no treatment that provides durable relief for the vast majority of GBM patients. In this study, weve tested a bispecific antibody comprised of single-chain variable regions (scFvs) against T cell CD3{varepsilon} and GBM cell interleukin 13 receptor alpha 2 (IL13R2). We demonstrate that this BiTE (BiTELLON) engages peripheral and tumor-infiltrating lymphocytes harvested from patients tumors, and in so doing exerts anti-GBM activity ex vivo. The interaction of BiTELLON with T cells and engagement of IL13R2-expressing GBM cells stimulates T cell proliferation as well as production of pro-inflammatory cytokines INF{gamma} and TNF. We have modified neural stem cells (NSCs) to produce and secrete the BiTE (NSCsLLON). When injected intracranially in mice with brain tumor, NSCsLLON show tropism for tumor, secrete BiTELLON, and remain viable for several days. When injected directly into tumor, NSCLLON provide significant survival benefit to mice bearing IL13R2+ GBM. Our results support further investigation and development of this therapeutic for clinical translation.

immunology

MSCs Successfully Deliver Oncolytic Virotherapy to Diffuse Intrinsic Pontine Glioma

Diffuse intrinsic pontine glioma (DIPG) is among the deadliest of pediatric brain tumors. Radiation therapy is the standard of care treatment for DIPG, but offers only transient relief of symptoms for DIPG patients without providing significant survival benefit. Oncolytic virotherapy (OV) is an anticancer treatment that has been investigated for treating various types of brain tumors. Here, we have explored the use of mesenchymal stem cells (MSC) for OV delivery and evaluated treatment efficacy using preclinical models of DIPG. Our results show that DIPG cells and tumors exhibit robust expression of cell surface proteins that are important for OV entry, and that MSCs loaded with OV disseminate within and release OV throughout the tumor in mice bearing DIPG brainstem xenografts. When combining administration of OV-loaded MSCs with radiotherapy, mice bearing brainstem DIPG xenografts experience a significant survival benefit, relative to that conferred by either therapy alone (p<0.0001). Our results support further preclinical investigation of cell-based OV therapy with radiation for potential translation in treating DIPG patients.

cancer biology