GSH/pH dual response drug delivery system for photothermal enhanced gene-immunotherapy
Tiantian Ma1, Wen Li1, Jingtao Ye1
1College of Material, Chemistry and Chemical Engineering, Hangzhou Normal University, Key Laboratory of Organosilicon Chemistry and Material Technology, Ministry of Education, Key Laboratory of Organosilicon Material Technology, Hangzhou 311121, Zhejiang Province, P. R. China. liyang@hznu.edu.cn.
Abstract:
Breast cancer has emerged as a leading cause of mortality among women. Photothermal therapy represents a recent therapeutic modality for eradicating localized tumors, albeit hindered by its limited penetration into tumor tissues. Recognizing the potential of photothermal therapy to induce immunogenic cell death in tumor cells, we explored a gene delivery approach utilizing small interfering RNA targeting programmed death ligand 1 (PD-L1), abbreviated as siPD-L1, to bolster the anti-tumor immune response elicited by this therapy. Nonetheless, the suboptimal release efficiency and inherent instability of RNA molecules have posed challenges to their therapeutic efficacy. In this study, we designed a glutathione (GSH)/pH-responsive micelle system, employing biocompatible and low-toxicity polyethyleneimine in conjunction with structurally robust pluronic P123, to encapsulate both indocyanine green (ICG) and siPD-L1 for precise targeting in breast cancer treatment. The resulting PSP/ICG/siPD-L1 nanocarrier demonstrated admirable biocompatibility and stability. Upon internalization into tumor cells, this nanocarrier exhibited rapid release of both ICG and siPD-L1, responding to the acidic tumor microenvironment and GSH conditions. The inclusion of siPD-L1 effectively downregulated the expression of PD-L1 on the tumor cell surface, thereby impeding tumor growth. Additionally, ICG demonstrated a photothermal effect when exposed to near-infrared light. Both in vitro and in vivo investigations substantiated the nanocarrier's efficacy against tumor cells, culminating in the complete ablation of 4T1 tumors in situ. Consequently, PSP/ICG/siPD-L1 emerges as a promising nanocarrier candidate for augmenting anti-tumor immunity through the synergistic combination of photothermal therapy and gene-based intervention.
Insights
This study developed a novel nanocarrier for breast cancer treatment, combining photothermal therapy with gene silencing. The system effectively delivered therapeutic agents, leading to complete tumor eradication and enhanced anti-tumor immunity.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- Breast cancer is a major cause of mortality in women.
- Photothermal therapy (PTT) shows promise for localized tumors but faces penetration challenges.
- Gene therapy using small interfering RNA (siPD-L1) can enhance PTT by modulating the immune response.
Purpose of the Study:
- To develop a novel nanocarrier for targeted breast cancer treatment.
- To combine PTT with gene silencing of programmed death ligand 1 (PD-L1) for synergistic anti-tumor effects.
- To overcome limitations of RNA instability and suboptimal drug release.
Main Methods:
- Designed a glutathione (GSH)/pH-responsive micelle system encapsulating indocyanine green (ICG) and siPD-L1.
- Utilized polyethyleneimine and pluronic P123 for nanocarrier formulation (PSP/ICG/siPD-L1).
- Evaluated nanocarrier biocompatibility, stability, drug release, and therapeutic efficacy in vitro and in vivo.
Main Results:
- The PSP/ICG/siPD-L1 nanocarrier showed good biocompatibility and stability.
- Rapid release of ICG and siPD-L1 was observed in response to tumor microenvironment triggers (acidic pH and GSH).
- siPD-L1 downregulated PD-L1 expression, while ICG produced a photothermal effect, leading to complete 4T1 tumor ablation in vivo.
Conclusions:
- The developed nanocarrier system is effective for targeted breast cancer therapy.
- Synergistic combination of PTT and siPD-L1 delivery enhances anti-tumor immunity.
- PSP/ICG/siPD-L1 holds promise for improving breast cancer treatment outcomes.
Related Concept Videos
Tumor Immunotherapy
Gene Therapy


