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Published on: February 17, 2023
Self-Activating Therapeutic Nanoparticle: A Targeted Tumor Therapy Using Reactive Oxygen Species Self-Generation and
Rae Hyung Kang1, Yumi Kim2,3, Ji Hyeon Kim4
1Department of Biomedical Science, Graduate School, Kyung Hee University, Seoul 02447, Republic of Korea.
Abstract:
One of the recent advances in nanotechnology within the medical field is the development of a nanoformulation of anticancer drugs or photosensitizers. Cancer cell-specific drug delivery and upregulation of the endogenous level of reactive oxygen species (ROS) are important in precision anticancer treatment. Within our article, we report a new therapeutic nanoformulation of cancer cell targeting using endogenous ROS self-generation without an external initiator and a switch-on drug release (ROS-induced cascade nanoparticle degradation and anticancer drug generation). We found a substantial cellular ROS generation by treating an isothiocyanate-containing chemical and functionalizing it onto the surface of porous silicon nanoparticles (pSiNPs) that are biodegradable and ROS-responsive nanocarriers. Simultaneously, we loaded an ROS-responsive prodrug (JS-11) that could be converted to the original anticancer drug, SN-38, and conducted further surface functionalization with a cancer-targeting peptide, CGKRK. We demonstrated the feasibility as a cancer-targeting and self-activating therapeutic nanoparticle in a pancreatic cancer xenograft mouse model, and it showed a superior therapeutic efficacy through ROS-induced therapy and drug-induced cell death. The work presented is a new concept of a nanotherapeutic and provides a more feasible clinical translational pathway.
Insights
This study introduces a novel nanoparticle that generates reactive oxygen species (ROS) to target cancer cells. The nanoparticle releases an anticancer drug upon encountering ROS, enhancing treatment efficacy.
Area of Science:
- Nanotechnology
- Oncology
- Biomedical Engineering
Background:
- Nanotechnology enables targeted delivery of anticancer drugs and photosensitizers.
- Endogenous reactive oxygen species (ROS) generation is crucial for precision cancer therapy.
- Current nanotherapeutics require external initiators for drug release.
Purpose of the Study:
- To develop a novel nanoformulation for cancer cell targeting.
- To achieve endogenous ROS self-generation without external initiators.
- To enable switch-on drug release via ROS-induced nanoparticle degradation.
Main Methods:
- Functionalized porous silicon nanoparticles (pSiNPs) with an isothiocyanate-containing chemical for ROS generation.
- Loaded pSiNPs with an ROS-responsive prodrug (JS-11) convertible to SN-38.
- Surface-functionalized nanoparticles with a cancer-targeting peptide (CGKRK).
Main Results:
- Demonstrated substantial cellular ROS generation by the functionalized pSiNPs.
- Confirmed ROS-responsive prodrug activation and anticancer drug release.
- Showcased superior therapeutic efficacy in a pancreatic cancer xenograft mouse model.
Conclusions:
- The developed nanoparticle acts as a cancer-targeting and self-activating therapeutic agent.
- Achieved superior efficacy through combined ROS-induced and drug-induced cell death.
- Presents a novel nanotherapeutic concept with a feasible clinical translational pathway.
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