Piezocatalytic Schottky Junction Treats Atherosclerosis by a Biomimetic Trojan Horse Strategy.
Jingyun ChengWenqi PanYi ZhengJingyi ZhangLiang ChenHui HuangYu ChenRong WuPublished in: Advanced materials (Deerfield Beach, Fla.) (2024)
The atherosclerotic vulnerable plaque is characterized by the foamy macrophage burden, involving impaired cholesterol efflux and deficient efferocytosis. Correspondingly, piezocatalytic therapy is an emerging solution for eliminating the foamy macrophage burden with satisfactory spatiotemporal controllability and deep penetration depth. Herein, we engineer a biomimetic Trojan horse (Au-ZnO@MM) by coating the macrophage membrane (MM) onto the surface of a rod-like Au-ZnO Schottky Junction to effectively relieve the atherosclerotic progression. These Trojan horses with the coating of MM are actively transported into subsistent foamy macrophages and generate abundant reactive oxygen species (ROS) via ultrasound-activated piezocatalysis. ROS-initiated autophagy and mitochondrial dysfunction induce substantial cell apoptosis, alleviating the burden of subsistent foamy macrophages. The resulting apoptotic fragments further significantly facilitate cholesterol excretion and trigger efferocytosis of intraplaque fresh macrophages. Ultimately, the biomimetic Au-ZnO@MM piezocatalyst not only inhibits the foaming capacity of macrophages, but also improves the function of removing cell debris, which can stabilize atherosclerotic vulnerable plaque. Meanwhile, the plasmon resonance effect of integrated gold nanoparticles enables favorable photoacoustic molecular imaging for real-time image-guided atherosclerotic therapy. This proposed biomimetic Trojan horse strategy provides the paradigm of employing ultrasound-activated piezocatalytic methodology for enhanced atherosclerotic theranostics. This article is protected by copyright. All rights reserved.
Keyphrases
- reduced graphene oxide
- reactive oxygen species
- gold nanoparticles
- cell death
- sensitive detection
- quantum dots
- visible light
- adipose tissue
- magnetic resonance imaging
- room temperature
- coronary artery disease
- dna damage
- tissue engineering
- cardiovascular disease
- single cell
- energy transfer
- cell proliferation
- oxidative stress
- stem cells
- type diabetes
- low density lipoprotein
- signaling pathway
- mesenchymal stem cells
- light emitting
- solid state