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Far-red light-mediated programmable anti-cancer gene delivery in cooperation with photodynamic therapy
Jinhui Wang1, Hua He1, Xin Xu1
1Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Institute of Functional Nano and Soft Materials (FUNSOM), Collaborative Innovation Center of Suzhou Nano Science & Technology, Soochow University, Suzhou 215123, China.
Abstract:
Effective anti-cancer therapy is hurdled by the complicated extracellular and intracellular barriers, and thus a smart gene vector that can enable programmable gene delivery is highly demanded. Photo-manipulation of gene delivery processes features spatial and temporal precision, while majority of current strategies utilizes short-wavelength UV/visible light with poor tissue penetration or high-power-density near-infrared (NIR) light that would cause undesired heat damage. Herein, an ROS-degradable polycation was designed and co-delivered with a photosensitizer (PS), thus realizing photo-programmable gene delivery using far-red light (661 nm) at low optical power density (down to 5 mW cm-2). Thioketal-crosslinked polyethylenimine (TK-PEI) was synthesized to condense p53 gene to form nanocomplexes (NCs), and hyaluronic acid (HA) modified with pheophytin a (Pha) was coated onto NCs to enhance their colloidal stability and enable cancer cell targeting. Short-time (8-min) light irradiation produced non-lethal amount of ROS to disrupt the endosomal membranes and facilitate p53 gene release via degradation of TK-PEI, which collectively enhanced p53 expression levels toward anti-cancer gene therapy. Long-time (30-min) light irradiation at the post-transfection state generated lethal amount of ROS, which cooperatively killed cancer cells to strengthen p53 gene therapy. To the best of our knowledge, this study represents the first example of an "one stone, three birds" approach to realize cooperative anti-cancer gene therapy using low-power-density, long-wavelength visible light as a single stimulus.
Insights
This study introduces a novel gene delivery system using far-red light to precisely control anti-cancer gene therapy. The system enhances therapeutic effects by generating reactive oxygen species (ROS) to improve gene release and kill cancer cells.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- Gene therapy faces challenges from biological barriers, necessitating advanced delivery systems.
- Current photo-therapies use light with limited tissue penetration or cause thermal damage.
Purpose of the Study:
- To develop a photo-programmable gene delivery vector for enhanced anti-cancer therapy.
- To utilize far-red light for precise spatial and temporal control of gene delivery.
Main Methods:
- Synthesized ROS-degradable thioketal-crosslinked polyethylenimine (TK-PEI) to condense p53 gene into nanocomplexes (NCs).
- Coated NCs with hyaluronic acid (HA) modified pheophytin a (Pha) for stability and cancer cell targeting.
- Irradiated NCs with low-power far-red light (661 nm) to trigger ROS generation and gene release.
Main Results:
- Short light irradiation (8 min) enhanced p53 gene expression by facilitating endosomal escape via TK-PEI degradation.
- Long light irradiation (30 min) generated lethal ROS levels, leading to synergistic cancer cell death.
- Demonstrated a "one stone, three birds" approach for cooperative anti-cancer gene therapy.
Conclusions:
- Developed a novel, light-activatable gene delivery system for enhanced anti-cancer therapy.
- Successfully utilized low-power, long-wavelength light for precise spatiotemporal control of gene delivery and cancer cell killing.
- This approach offers a promising strategy for cooperative anti-cancer gene therapy with minimal thermal damage.
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