It is of great significance to develop a drug carrier that effectively targets chemotherapeutic drugs to the tumor site, improves therapeutic efficacy and reduces side effects associated with high-dose medicines. In the present study, an intelligent drug carrier system, FA-β-CD/DOX@Cu 2+ @GA@Fe 3 O 4 , was synthesized by skillfully introducing metal ions as a bridge base. The performance of the prepared FA-β-CD@Cu 2+ @GA@Fe 3 O 4 metal-polymer-coordinated nanocomplexes were determined by UV-visible spectroscopy, NMR, FT-IR, XPS, VSM, DLS, and TEM analysis. The data showed that these nanocomplexes had good pH/GSH-responsive drug release behavior, and enabled enhanced magnetic and folic acid-mediated tumor cell targeting. Moreover, the toxicity effects of the FA-β-CD/DOX@Cu 2+ @GA@Fe 3 O 4 on 3T3 cells and 4T1 cells were measured by the MTT method, and it was found that it displayed low cytotoxicity against 3T3 cells and had a stronger effect on killing 4T1 cells than DOX alone. The results also showed that the Cu 2+ -based coordination polymers had a significant ability to deplete GSH and generate ROS. It could be concluded that the introduction of Cu 2+ not only facilitated the assembly of nanocomplexes, but also successfully enhanced the anti-tumor effect, making FA-β-CD@Cu 2+ @GA@Fe 3 O 4 a potential nanoplatform for effectively mediating combined chemotherapy and chemokinetic therapy for tumors. All these characteristics verified the great potential of FA-β-CD/DOX@Cu 2+ @GA@Fe 3 O 4 in multipurpose smart drug delivery systems, accelerating the application range of metal-polymer-coordinated nanocomplexes in biomedical fields.
Keyphrases
- cancer therapy
- pet ct
- aqueous solution
- drug delivery
- drug release
- high dose
- metal organic framework
- nk cells
- photodynamic therapy
- high resolution
- magnetic resonance
- oxidative stress
- stem cells
- low dose
- radiation therapy
- artificial intelligence
- fluorescent probe
- rectal cancer
- locally advanced
- squamous cell carcinoma
- combination therapy
- single molecule
- mesenchymal stem cells
- solid state
- cell therapy
- climate change
- risk assessment
- bone marrow