Oxygen-Enriched Metal-Phenolic X-Ray Nanoprocessor for Cancer Radio-Radiodynamic Therapy in Combination with Checkpoint Blockade Immunotherapy.
Wei SangLisi XieGuohao WangJie LiZhan ZhangBei LiSen GuoChu-Xia DengYulun DaiPublished in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2020)
Radiotherapy (RT) based on DNA damage and reactive oxygen species (ROS) generation has been clinically validated in various types of cancer. However, high dose-dependent induced toxicity to tissues, non-selectivity, and radioresistance greatly limit the application of RT. Herein, an oxygen-enriched X-ray nanoprocessor Hb@Hf-Ce6 nanoparticle is developed for improving the therapeutic effect of RT-radiodynamic therapy (RDT), enhancing modulation of hypoxia tumor microenvironment (TME) and promoting antitumor immune response in combination with programmed cell death protein 1 (PD-1) immune checkpoint blockade. All functional molecules are integrated into the nanoparticle based on metal-phenolic coordination, wherein one high-Z radiosensitizer (hafnium, Hf) coordinated with chlorin e6 (Ce6) modified polyphenols and a promising oxygen carrier (hemoglobin, Hb) is encapsulated for modulation of oxygen balance in the hypoxia TME. Specifically, under single X-ray irradiation, radioluminescence excited by Hf can activate photosensitizer Ce6 for ROS generation by RDT. Therefore, this combinatory strategy induces comprehensive antitumor immune response for cancer eradication and metastasis inhibition. This work presents a multifunctional metal-phenolic nanoplatform for efficient X-ray mediated RT-RDT in combination with immunotherapy and may provide a new therapeutic option for cancer treatment.
Keyphrases
- dna damage
- immune response
- reactive oxygen species
- papillary thyroid
- photodynamic therapy
- high resolution
- high dose
- squamous cell
- dual energy
- oxidative stress
- cell death
- early stage
- drug delivery
- heart failure
- dna repair
- endothelial cells
- energy transfer
- low dose
- dendritic cells
- radiation therapy
- stem cells
- computed tomography
- high glucose
- acute heart failure
- electron microscopy
- cell proliferation
- radiation induced
- locally advanced
- mass spectrometry
- magnetic resonance imaging
- helicobacter pylori
- squamous cell carcinoma
- drug release
- quantum dots
- smoking cessation