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Targeting human oncogenic viruses with CRISPR/Cas: New therapeutic opportunities and challenges
Maryam Pourdehghan Jigheh1, Zahra Zenderuh Ravanlo1, Mahya Zarei Shahrak1
1Infectious and Tropical Diseases Research Center, Tabriz University of Medical Sciences, Tabriz, Iran; Department of Virology, Faculty of Medicine, Tabriz University of Medical Sciences, Tabriz, Iran.
Abstract:
CRISPR/Cas systems, initially characterized as bacterial adaptive immune mechanisms, have rapidly emerged as precise and versatile genome-editing tools with significant potential for antiviral research and therapeutic development. This review highlights the role of CRISPR/Cas systems in targeting persistent and human oncogenic viruses, including HPV, HBV, HCV, EBV, KSHV, HTLV-1, and MCPyV, as well as HIV, which may indirectly contribute to cancer through immune dysregulation. Many of these viruses can integrate into the host genome or persist as chronic or latent infections, contributing to cancers for which curative options are limited. CRISPR-based strategies enable the excision of integrated proviral DNA, disruption of viral replication, targeted silencing of viral transcripts, and modulation of host tumor-suppressor pathways. Cas9 efficiently targets DNA viruses, such as HBV and HPV, whereas RNA-targeting Cas13 allows precise silencing of RNA viruses, like HCV. Editing T-cell receptors, including CCR5 and CXCR4, offers the potential for long-term resistance to HIV. CRISPR-based preclinical studies indicate the potential to disrupt HBV cccDNA, suppress EBV and KSHV latency gene expression, and inactivate HTLV-1 oncogenes, thereby potentially reducing viral persistence and oncogenic progression. Despite these advances, challenges remain regarding off-target effects, delivery efficiency, immune responses, and ethical considerations. Innovations such as high-fidelity Cas variants, base and prime editing, and non-viral delivery systems are expected to enhance both safety and therapeutic precision. This review provides an overview of viral life cycles, oncogenic pathways, and therapeutic vulnerabilities of human oncogenic viruses and CRISPR-based genome-editing approaches under investigation for viral elimination and cancer therapy.
Insights
CRISPR gene editing offers new ways to fight persistent viruses like HPV and HIV that cause cancer. This technology precisely targets viral DNA or RNA, showing promise for eliminating infections and developing novel cancer therapies.
Area of Science:
- Molecular Biology
- Genetics
- Virology
Background:
- CRISPR/Cas systems, originally bacterial immune mechanisms, are now advanced genome-editing tools.
- Persistent viral infections, including oncogenic viruses like HPV, HBV, and HIV, contribute to cancers with limited treatment options.
- Many viruses integrate into host DNA or establish chronic/latent infections, complicating eradication.
Purpose of the Study:
- To review the application of CRISPR/Cas systems in targeting persistent human oncogenic viruses.
- To explore CRISPR-based strategies for viral elimination and cancer therapy.
- To discuss the potential and challenges of CRISPR technology in antiviral research.
Main Methods:
- Review of CRISPR/Cas systems (Cas9, Cas13) for targeting viral DNA and RNA.
- Analysis of CRISPR strategies including proviral DNA excision, replication disruption, and transcript silencing.
- Examination of preclinical studies on CRISPR targeting HBV, HPV, HCV, EBV, KSHV, HTLV-1, MCPyV, and HIV.
Main Results:
- CRISPR/Cas9 effectively targets DNA viruses (HBV, HPV); Cas13 targets RNA viruses (HCV).
- Preclinical data show potential for disrupting HBV cccDNA, suppressing EBV/KSHV latency, and inactivating HTLV-1.
- Editing T-cell receptors (CCR5, CXCR4) may confer HIV resistance.
Conclusions:
- CRISPR-based genome editing shows significant potential for eliminating persistent viruses and treating associated cancers.
- Ongoing innovations like high-fidelity Cas variants and advanced editing techniques aim to improve safety and precision.
- Challenges include off-target effects, delivery efficiency, immune responses, and ethical considerations that require further research.
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