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Evaluation of the Efficacy And Toxicity of RNAs Targeting HIV-1 Production for Use in Gene or Drug Therapy
Published on: September 5, 2016
Anti-cancer effect of HIV-1 viral protein R on doxorubicin resistant neuroblastoma
Richard Y Zhao1, Dong Liang, Ge Li
1Department of Pathology, University of Maryland School of Medicine, Baltimore, Maryland, United States of America. rzhao@som.umaryland.edu
Abstract:
Several unique biological features of HIV-1 Vpr make it a potentially powerful agent for anti-cancer therapy. First, Vpr inhibits cell proliferation by induction of cell cycle G2 arrest. Second, it induces apoptosis through multiple mechanisms, which could be significant as it may be able to overcome apoptotic resistance exhibited by many cancerous cells, and, finally, Vpr selectively kills fast growing cells in a p53-independent manner. To demonstrate the potential utility of Vpr as an anti-cancer agent, we carried out proof-of-concept studies in vitro and in vivo. Results of our preliminary studies demonstrated that Vpr induces cell cycle G2 arrest and apoptosis in a variety of cancer types. Moreover, the same Vpr effects could also be detected in some cancer cells that are resistant to anti-cancer drugs such as doxorubicin (DOX). To further illustrate the potential value of Vpr in tumor growth inhibition, we adopted a DOX-resistant neuroblastoma model by injecting SK-N-SH cells into C57BL/6N and C57BL/6J-scid/scid mice. We hypothesized that Vpr is able to block cell proliferation and induce apoptosis regardless of the drug resistance status of the tumors. Indeed, production of Vpr via adenoviral delivery to neuroblastoma cells caused G2 arrest and apoptosis in both drug naïve and DOX-resistant cells. In addition, pre-infection or intratumoral injection of vpr-expressing adenoviral particles into neuroblastoma tumors in SCID mice markedly inhibited tumor growth. Therefore, Vpr could possibly be used as a supplemental viral therapeutic agent for selective inhibition of tumor growth in anti-cancer therapy especially when other therapies stop working.
Insights
The HIV-1 Vpr protein shows promise as an anti-cancer agent by inducing cell cycle arrest and apoptosis, even in drug-resistant cancer cells. This viral protein selectively targets fast-growing tumor cells, offering a potential new therapeutic strategy.
Area of Science:
- Oncology
- Virology
- Molecular Biology
Background:
- The human immunodeficiency virus type 1 (HIV-1) viral protein R (Vpr) possesses unique biological characteristics.
- These characteristics suggest Vpr's potential as an anti-cancer therapeutic agent.
Purpose of the Study:
- To investigate the anti-cancer potential of HIV-1 Vpr.
- To evaluate Vpr's efficacy in inducing cell cycle arrest and apoptosis in various cancer types, including drug-resistant models.
Main Methods:
- In vitro and in vivo studies were conducted using cancer cell lines and mouse models.
- Adenoviral delivery systems were employed to express Vpr in neuroblastoma cells.
- Tumor growth inhibition was assessed in drug-naïve and doxorubicin-resistant neuroblastoma xenografts in SCID mice.
Main Results:
- HIV-1 Vpr effectively induced cell cycle G2 arrest and apoptosis in diverse cancer cell types.
- Vpr demonstrated efficacy against doxorubicin-resistant cancer cells, including neuroblastoma.
- Adenoviral delivery of Vpr significantly inhibited tumor growth in vivo, irrespective of drug resistance.
Conclusions:
- HIV-1 Vpr exhibits potent anti-proliferative and pro-apoptotic effects on cancer cells.
- Vpr's ability to overcome drug resistance and selectively target fast-growing cells makes it a promising candidate for novel anti-cancer therapies.
- Vpr may serve as a valuable supplemental viral therapeutic agent, particularly for tumors resistant to conventional treatments.
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