Collaborative Design of MgO/FeO x Nanosheets on Titanium: Combining Therapy with Regeneration.
Dongdong ZhangJi TanRu XuHuihui DuJuning XieFeng PengXuanyong LiuPublished in: Small (Weinheim an der Bergstrasse, Germany) (2022)
The repair of bone defects caused by osteosarcoma resection remains a clinical challenge because of the tumor recurrence and bacterial infection. Combining tumor and bacterial therapy with bone regeneration properties in bone implants is a promising strategy for the treatment of osteosarcoma. Here, a layer of MgO/FeO x nanosheet is constructed on the Ti implant to prevent tumor recurrence and bacterial infection, while simultaneously accelerating bone formation. This MgO/FeO x double metal oxide demonstrates good peroxidase activity to catalyze H 2 O 2 , which is rich in tumor microenvironment, to form reactive oxygen species (ROS), and shows good photothermal conversion capacity to produce photothermal effect, thus synergistically killing tumor cells and eliminating tumor tissue. In addition, it generates a local alkaline surface microenvironment to inhibit the energy metabolism of bacteria to enhance the photothermal antibacterial effect. Furthermore, benefiting from the generation of a Mg ion-containing alkaline microenvironment, this MgO/FeO x film can promote the osteogenic differentiation of osteoblast and angiogenesis of vascular endothelial cells in vitro as well as accelerated bone formation in vivo. This study proposes a multifunctional platform for integrating tumor and bacterial therapy and bone regeneration, which has good application prospects for the treatment of osteosarcoma.
Keyphrases
- bone regeneration
- endothelial cells
- stem cells
- reactive oxygen species
- drug delivery
- cancer therapy
- photodynamic therapy
- soft tissue
- bone mineral density
- cell death
- drug release
- cell therapy
- combination therapy
- bone marrow
- gold nanoparticles
- hydrogen peroxide
- quantum dots
- high throughput
- postmenopausal women
- reduced graphene oxide
- bone loss
- silver nanoparticles