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Updated: May 9, 2025

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
[Oncolytic virus-mediated base editing for targeted killing of cervical cancer cells]
Huanhuan Xu1,2, Siwei Li2, Xi Luo1
1Key Laboratory of Stem Cells and Pharmaceutical Biotechnology of Guangxi Universities, College of Life Sciences, Guangxi Normal University, Guilin 541004, Guangxi, China.
Abstract:
Conventional cancer therapies, such as radiotherapy and chemotherapy, often damage normal cells and may induce new tumors. Oncolytic viruses (OVs) selectively target tumor cells while sparing normal cells. Most OVs used in clinical trials have been genetically engineered to enhance their ability to target tumor cells and activate immune responses. To develop a specific OV-based approach for treating cervical cancer, this study constructed an oncolytic adenovirus that delivered a base editor targeting oncogenes to achieve efficient killing of tumor cells through inhibiting tumor growth and directly lysing tumor cells. We utilized the human telomerase reverse transcriptase (TERT) promoter to drive the expression of adenovirus early region 1A (E1A) and successfully constructed the P-hTERT-E1A-GFP vector, which was validated for its activity in cervical cancer cells. Given the critical role of the MYC oncogene in the research of oncology, identifying efficient editing sites for the MYC oncogene is a key step in this study.Three MYC-targeting gRNAs were engineered and co-delivered with ABE8e base editor plasmids into HEK293T cells. Following puromycin selection, Sanger sequencing demonstrated differential editing efficiencies: MYC-1 (43%), MYC-2 (25%), and MYC-3 (35%), identifying MYC-1 as the most efficient editing locus. By constructing the P-ABEs-hTERT-E1A-GFP and P-MYC gRNA-hTERT-E1A-GFP vectors, we successfully packaged the virus and confirmed its specificity and efficacy. The experimental results demonstrate that this novel oncolytic adenovirus effectively inhibits the growth of HeLa cells in vitro, providing new experimental evidence and potential strategies for treating cervical cancer based on the HeLa cell model.
Insights
This study engineered an oncolytic adenovirus to target cervical cancer. The virus delivers a base editor to inhibit the MYC oncogene, effectively killing cancer cells while sparing normal cells.
Area of Science:
- Oncolytic virotherapy
- Gene editing
- Cancer biology
Context:
- Conventional cancer treatments like chemotherapy and radiotherapy can harm healthy cells and cause secondary tumors.
- Oncolytic viruses (OVs) offer a targeted approach, selectively infecting and destroying cancer cells.
- Genetic engineering of OVs enhances tumor targeting and immune response activation.
Purpose:
- To develop a novel oncolytic adenovirus for cervical cancer treatment.
- To engineer an OV carrying a base editor targeting oncogenes for efficient tumor cell killing.
- To validate the efficacy of this approach in a cervical cancer model.
Summary:
- An oncolytic adenovirus was constructed using the hTERT promoter to drive E1A expression, creating the P-hTERT-E1A-GFP vector.
- Three MYC-targeting guide RNAs (gRNAs) were tested; MYC-1 showed the highest editing efficiency (43%).
- The engineered virus, P-MYC gRNA-hTERT-E1A-GFP, demonstrated specific and effective inhibition of HeLa cervical cancer cell growth in vitro.
Impact:
- Provides a novel OV-based strategy for cervical cancer therapy.
- Demonstrates successful targeted oncogene inhibition using base editing within an OV.
- Offers potential for more effective and less toxic cancer treatments.
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