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Tepilamide Fumarate as a Novel Potentiator of Virus-Based Therapy. | LitMetric

AI Article Synopsis

  • Oncolytic virotherapy utilizes viruses like VSVΔ51 and HSV-1 to target cancer cells but faces challenges from the body's interferon response, which can create resistance in cancer cells.
  • Dimethyl fumarate (DMF) is known for its anti-cancer effects and can enhance the effectiveness of these oncolytic viruses; a new analog, Tepilamide fumarate (TPF), is being tested for its potential in this area.
  • TPF demonstrated superior capabilities in increasing viral infection and destruction of resistant cancer cells compared to DMF, effectively targeting cancer while sparing healthy tissue, and showing promise in gene therapy as well.

Article Abstract

Oncolytic virotherapy, using viruses such as vesicular stomatitis virus (VSVΔ51) and Herpes Simplex Virus-1 (HSV-1) to selectively attack cancer cells, faces challenges such as cellular resistance mediated by the interferon (IFN) response. Dimethyl fumarate (DMF) is used in the treatment of multiple sclerosis and psoriasis and is recognized for its anti-cancer properties and has been shown to enhance both VSVΔ51 and HSV-1 oncolytic activity. Tepilamide fumarate (TPF) is a DMF analog currently undergoing clinical trials for the treatment of moderate-to-severe plaque psoriasis. The aim of this study was to evaluate the potential of TPF in enhancing the effectiveness of oncolytic viruses. In vitro, TPF treatment rendered 786-0 carcinoma cells more susceptible to VSVΔ51 infection, leading to increased viral replication. It outperformed DMF in both increasing viral infection and increasing the killing of these resistant cancer cells and other cancer cell lines tested. Ex vivo studies demonstrated TPF's selective boosting of oncolytic virus infection in cancer cells without affecting healthy tissues. Effectiveness was notably high in pancreatic and ovarian tumor samples. Our study further indicates that TPF can downregulate the IFN pathway through a similar mechanism to DMF, making resistant cancer cells more vulnerable to viral infection. Furthermore, TPF's impact on gene therapy was assessed, revealing its ability to enhance the transduction efficiency of vectors such as lentivirus, adenovirus type 5, and adeno-associated virus type 2 across various cell lines. This data underscore TPF's potential role in not only oncolytic virotherapy but also in the broader application of gene therapy. Collectively, these findings position TPF as a promising agent in oncolytic virotherapy, warranting further exploration of its therapeutic potential.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11209164PMC
http://dx.doi.org/10.3390/v16060920DOI Listing

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