Relieving inflammation via scavenging toxic reactive oxygen species (ROS) during the acute phase of spinal cord injury (SCI) proves to be an effective strategy to mitigate secondary spinal cord injury and improve recovery of motor function. However, commonly used corticosteroid anti-inflammatory drugs show adverse side effects which may induce increased risk of wound infection. Fortunately, hydrogen (H 2 ), featuring selective antioxidant performance, easy penetrability, and excellent biosafety, is being extensively investigated as a potential anti-inflammatory therapeutic gas for the treatment of SCI. In this work, by a facile in situ growth approach of gold nanoparticles (AuNPs) on the piezoelectric BaTiO 3 , a particulate nanocomposite with Schottky heterojunction (Au@BT) is synthesized, which can generate H 2 continuously by catalyzing H + reduction through piezoelectric catalysis. Further, theoretical calculations are employed to reveal the piezoelectric catalytic mechanism of Au@BT. Transcriptomics analysis and nontargeted large-scale metabolomic analysis reveal the deeper mechanism of the neuroprotective effect of H 2 therapy. The as-prepared Au@BT nanoparticle is first explored as a flexible hydrogen gas generator for efficient SCI therapy. This study highlights a promising prospect of nanocatalytic medicine for disease treatments by catalyzing H 2 generation; thus, offering a significant alternative to conventional approaches against refractory spinal cord injury.
Keyphrases
- spinal cord injury
- visible light
- reduced graphene oxide
- gold nanoparticles
- spinal cord
- reactive oxygen species
- neuropathic pain
- oxidative stress
- anti inflammatory
- sensitive detection
- genome wide
- anti inflammatory drugs
- room temperature
- cell death
- emergency department
- molecular dynamics simulations
- liver failure
- carbon dioxide
- mass spectrometry
- hepatitis b virus
- dna methylation
- density functional theory
- highly efficient
- acute respiratory distress syndrome
- multidrug resistant
- mesenchymal stem cells
- high resolution mass spectrometry
- current status
- bone marrow
- extracorporeal membrane oxygenation
- blood brain barrier
- monte carlo