Polyvinylpyrrolidone-Coated Cubic Hollow Nanocages of PdPt 3 and PdIr 3 as Highly Efficient Self-Cascade Uricase/Peroxidase Mimics.
Zheng XiJing XieJun HuQin-Chao WangZiyu WangXiaoqiao YangLiying ZongMengyao ZhangXiaohuan SunShouheng SunJie HanPublished in: Nano letters (2024)
Uricase-catalyzed uric acid (UA) degradation has been applied for hyperuricemia therapy, but this medication is limited by H 2 O 2 accumulation, which can cause oxidative stress of cells, resulting in many other health issues. Herein, we report a robust cubic hollow nanocage (HNC) system based on polyvinylpyrrolidone-coated PdPt 3 and PdIr 3 to serve as highly efficient self-cascade uricase/peroxidase mimics to achieve the desired dual catalysis for both UA degradation and H 2 O 2 elimination. These HNCs have hollow cubic shape with average wall thickness of 1.5 nm, providing desired synergy to enhance catalyst's activity and stability. Density functional theory calculations suggest the PdIr 3 HNC surface tend to promote OH*/O* desorption for better peroxidase-like catalysis, while the PdPt 3 HNC surface accelerates the UA oxidation by facilitating O 2 -to-H 2 O 2 conversion. The dual catalysis power demonstrated by these HNCs in cell studies suggests their great potential as a new type of nanozyme for treating hyperuricemia.
Keyphrases
- highly efficient
- uric acid
- density functional theory
- hydrogen peroxide
- induced apoptosis
- metabolic syndrome
- molecular dynamics
- visible light
- oxidative stress
- healthcare
- public health
- cell therapy
- molecularly imprinted
- nitric oxide
- cell cycle arrest
- mental health
- endoplasmic reticulum stress
- single cell
- metal organic framework
- dna damage
- room temperature
- health information
- stem cells
- signaling pathway
- photodynamic therapy
- human health
- molecular dynamics simulations
- cell death
- adverse drug
- optical coherence tomography
- gold nanoparticles
- climate change
- ionic liquid
- health promotion
- replacement therapy
- liquid chromatography