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Updated: Jan 13, 2026

Virus Delivery of CRISPR Guides to the Murine Prostate for Gene Alteration
Published on: April 27, 2018
CRISPR-Cas9-Loaded Theranostic Liposomes for Enhancing Radiosensitization of Prostate Cancer through POLD4 Gene
Xuhui Fan1, Ruru Zhang2, Linjun Yang3
1Department of Radiology, Shanghai General Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, P. R. China.
Abstract:
Radiotherapy is a fundamental treatment for prostate cancer; however, its therapeutic efficacy is frequently limited by radioresistance mediated through DNA repair mechanisms and other biological factors. Although gene therapy holds promise for overcoming such resistance, identifying effective radiosensitization targets and developing efficient gene delivery systems remain practically challenging. In this study, transcriptomic analysis of radiotherapy-treated prostate cancer cells revealed a marked upregulation of DNA polymerase delta subunit 4 (POLD4), a target that has not been systematically studied. To evaluate the potential of POLD4 for overcoming radioresistance, CRISPR-Cas9-based plasmids along with ultrasmall superparamagnetic iron oxide nanoparticles (USPIONs) were encapsulated within cationic liposomes for achieving an MRI-trackable gene delivery platform (plasmid and iron oxide co-loaded liposomes, termed PIO@Lipo). Comprehensive in vitro and in vivo studies demonstrated that PIO@Lipo enabled efficient POLD4 knockdown. Furthermore, PIO@Lipo synergized with radiotherapy to induce extensive DNA damage, promote tumor cell apoptosis, and remodel the immunosuppressive microenvironment. Notably, PIO@Lipo displayed superior MRI contrast enhancement capability and passive tumor targeting ability. In conclusion, this study has identified POLD4 as a potent target for radiosensitization, capable of disrupting DNA damage-repair homeostasis through MRI-monitored gene editing, thereby offering a promising strategy to enhance the efficacy of radiotherapy in prostate cancer.
Insights
Researchers identified DNA polymerase delta subunit 4 (POLD4) as a target to overcome prostate cancer radioresistance. An MRI-trackable gene therapy platform (PIO@Lipo) effectively reduced POLD4, enhancing radiotherapy efficacy by promoting tumor cell death and improving the tumor microenvironment.
Area of Science:
- Oncology
- Gene Therapy
- Nanomedicine
Background:
- Radiotherapy is crucial for prostate cancer but faces limitations due to radioresistance.
- Gene therapy offers potential to enhance radiosensitivity, but effective targets and delivery systems are needed.
- DNA repair mechanisms contribute significantly to radioresistance in cancer cells.
Purpose of the Study:
- To identify novel radiosensitization targets in prostate cancer.
- To develop an MRI-trackable gene delivery platform for targeted gene editing.
- To evaluate the efficacy of targeting DNA polymerase delta subunit 4 (POLD4) in overcoming radioresistance.
Main Methods:
- Transcriptomic analysis identified POLD4 upregulation in radiotherapy-treated prostate cancer cells.
- CRISPR-Cas9 plasmids and ultrasmall superparamagnetic iron oxide nanoparticles (USPIONs) were co-loaded into cationic liposomes (PIO@Lipo).
- In vitro and in vivo studies assessed PIO@Lipo's POLD4 knockdown efficiency, radiosensitization effects, and MRI tracking capabilities.
Main Results:
- PIO@Lipo demonstrated efficient POLD4 gene knockdown in prostate cancer cells.
- The PIO@Lipo platform synergized with radiotherapy to induce DNA damage and apoptosis.
- PIO@Lipo exhibited enhanced MRI contrast and passive tumor targeting, facilitating treatment monitoring.
Conclusions:
- POLD4 is a potent target for radiosensitization in prostate cancer.
- MRI-trackable gene editing using PIO@Lipo can disrupt DNA repair homeostasis.
- This approach offers a promising strategy to enhance radiotherapy efficacy in prostate cancer treatment.
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