"Electron Transport Chain Interference" Strategy of Amplified Mild-Photothermal Therapy and Defect-Engineered Multi-Enzymatic Activities for Synergistic Tumor-Personalized Suppression.
Shuming DongYushan DongZhiyu ZhaoJing LiuShikai LiuLili FengLili FengShili GaiYing XiePiaoping YangPublished in: Journal of the American Chemical Society (2023)
Arming activatable mild-photothermal therapy (PTT) with the property of relieving tumor thermotolerance holds great promise for overcoming traditional mild PTT limitations such as thermoresistance, insufficient therapeutic effect, and off-target heating. Herein, a mitochondria-targeting, defect-engineered AFCT nanozyme with enhanced multi-enzymatic activity was elaborately designed as a tumor microenvironment (TME)-activatable phototheranostic agent to achieve remarkable anti-tumor therapy via "electron transport chain (ETC) interference and synergistic adjuvant therapy". Density functional theory calculations revealed that the synergistic effect among multi-enzyme active centers endows the AFCT nanozymes with excellent catalytic activity. In TME, open sources of H 2 O 2 can be achieved by superoxide dismutase-mimicking AFCT nanozymes. In response to the dual stimuli of H 2 O 2 and mild acidity, the peroxidase-mimicking activity of AFCT nanozymes not only catalyzes the accumulation of H 2 O 2 to generate ·OH but also converts the loaded 2,2'-azino-bis(3-ethylbenzothiazoline-6-sulfonic acid) (ABTS) into its oxidized form with strong near-infrared absorption, specifically unlocking its photothermal and photoacoustic imaging properties. Intriguingly, the undesired thermoresistance of tumor cells can be greatly alleviated owing to the reduced expression of heat shock proteins enabled by NADH POD-mimicking AFCT-mediated NADH depletion and consequent restriction of ATP supply. Meanwhile, the accumulated ·OH can facilitate both apoptosis and ferroptosis in tumor cells, resulting in synergistic therapeutic outcomes in combination with TME-activated mild PTT.
Keyphrases
- density functional theory
- cancer therapy
- heat shock
- hydrogen peroxide
- drug delivery
- cell death
- molecular dynamics
- fluorescence imaging
- poor prognosis
- oxidative stress
- stem cells
- heat stress
- type diabetes
- machine learning
- nitric oxide
- reactive oxygen species
- cell cycle arrest
- adipose tissue
- artificial intelligence
- big data
- insulin resistance
- drinking water
- single cell
- weight loss
- heat shock protein
- replacement therapy
- smoking cessation
- signaling pathway