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Updated: Oct 4, 2026

Virus Delivery of CRISPR Guides to the Murine Prostate for Gene Alteration
Published on: April 27, 2018
Gene therapy for prostate cancer: current status and future prospects
K J Harrington1, C Spitzweg, A R Bateman
1Molecular Medicine Program and Department of Endocrinology, Mayo Clinic, Rochester, Minnesota, USA.
Purpose:
Locally advanced, relapsed and metastatic prostate cancer has a dismal prognosis with conventional therapies offering no more than palliation. In recent years advances achieved in understanding the molecular biology of cancer have afforded clinicians and scientists the opportunity to develop a range of novel genetic therapies for this disease.
Materials And Methods:
We performed a detailed review of published reports of gene therapy for prostate cancer. Particular emphasis was placed on recent developments in the arena of nonviral (plasmid DNA, DNA coated gold particles, liposomes and polymer DNA complexes) and viral (adenovirus, retrovirus, adeno-associated virus, herpes virus and pox virus) vectors. Therapeutic strategies were categorized as corrective, cytoreductive and immunomodulatory gene therapy for the purpose of data analysis and comparison.
Results:
Locoregional administration of nonviral and viral vectors can yield impressive local gene expression and therapeutic effects but to our knowledge no efficient systemically delivered vector is available to date. Corrective gene therapy to restore normal patterns of tumor suppressor gene (p53, Rb, p21 and p16) expression or negate the effect of mutated tumor promoting oncogenes (ras, myc, erbB2 and bcl-2) have efficacy in animal models but this approach suffers from the fact that each cancer cell must be targeted. A wide variety of cytoreductive strategies are under development, including suicide, anti-angiogenic, radioisotopic and pro-apoptotic gene therapies. Each approach has strengths and weaknesses, and may best be suited for use in combination. Immunomodulatory gene therapy seeks to generate an effective local immune response that translates to systemic antitumor activity. Currently most studies involve immunostimulatory cytokine genes, such as granulocyte-macrophage colony-stimulating factor, or interleukin-2 or 12.
Conclusions:
Various therapeutic genes have proved activity against prostate cancer in vitro and in vivo. However, the chief challenge facing clinical gene therapy strategies is the lack of efficient gene delivery by local and systemic routes. For the foreseeable future vector development may remain a major focus of ongoing research. Despite this caveat it is anticipated that gene therapy approaches may significantly contribute to the management of prostate cancer in the future.
Insights
Gene therapy offers novel treatments for advanced prostate cancer. Current challenges include efficient gene delivery, but ongoing research in viral and nonviral vectors shows promise for future clinical applications.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Advanced prostate cancer has a poor prognosis with conventional treatments.
- Understanding cancer molecular biology has led to novel genetic therapies.
Purpose of the Study:
- To review published reports on gene therapy for prostate cancer.
- To categorize and compare therapeutic strategies: corrective, cytoreductive, and immunomodulatory.
Main Methods:
- Detailed review of published gene therapy reports for prostate cancer.
- Emphasis on nonviral (plasmid DNA, gold particles, liposomes, polymer complexes) and viral (adenovirus, retrovirus, AAV, herpes, pox) vectors.
- Categorization of therapeutic strategies into corrective, cytoreductive, and immunomodulatory.
Main Results:
- Locoregional gene delivery shows local efficacy but no efficient systemic vectors are available.
- Corrective gene therapy (e.g., p53, Rb) shows promise in models but requires targeting each cell.
- Cytoreductive strategies (suicide, anti-angiogenic, etc.) and immunomodulatory approaches (cytokines) are under development.
Conclusions:
- Therapeutic genes demonstrate activity against prostate cancer in vitro and in vivo.
- Efficient gene delivery remains a major challenge for clinical application.
- Vector development is crucial for future gene therapy success in prostate cancer management.
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