Back to Search
Start Over
CuO dot-decorated Cu@Gd2O3 core–shell hierarchical structure for Cu(<scp>i</scp>) self-supplying chemodynamic therapy in combination with MRI-guided photothermal synergistic therapy
- Source :
- Materials Horizons. 8:1017-1028
- Publication Year :
- 2021
- Publisher :
- Royal Society of Chemistry (RSC), 2021.
-
Abstract
- Theoretically, the Fenton catalytic efficiency of the Cu-based nanoplatform is approximately 160 times that of traditional Fe-based agents. However, the coordination interaction between Cu(ii) and intracellular GSH significantly inhibits the high catalytic activity of Cu(i) generation, dramatically decreasing the Fenton-like catalytic efficiency. Herein, we designed a completely new and highly efficient hierarchical structural nanoplatform to enhance the mimic-peroxidase activity through utilizing comproportionation between CuO and elemental Cu core to self-supply Cu(i). The catalytic rate of this nanoplatform was approximately 55-fold that of traditional Fe-based agents. In a cell assay, this nanoplatform could function as an antagonist of GPX4 and agonist of SOD-1, resulting in intracellular ROS and H2O2 accumulation. Next, the accumulated H2O2 could be quickly catalyzed to highly toxic ˙OH by self-supplying Cu(i), causing strong oxidative stress damage to mitochondria and cell membranes. Under 808 nm laser irradiation, this nanoplatform exhibited a stronger inhibition of tumor growth, and effectively overcame the tumor resistance and recurrence. In addition, this hierarchical structure significantly promoted the interaction between water molecules and gadolinium centers, making TRF-mCuGd possess an ultrahigh T1 MRI contrast performance, and hence, more pathological information of the tumor could be achieved. Overall, this work provides a promising pattern for the design and development of cancer theranostics.
- Subjects :
- Process Chemistry and Technology
Gadolinium
chemistry.chemical_element
Comproportionation
Glutathione
Photothermal therapy
Photochemistry
Catalysis
chemistry.chemical_compound
Membrane
chemistry
Mechanics of Materials
Molecule
General Materials Science
Electrical and Electronic Engineering
Intracellular
Subjects
Details
- ISSN :
- 20516355 and 20516347
- Volume :
- 8
- Database :
- OpenAIRE
- Journal :
- Materials Horizons
- Accession number :
- edsair.doi...........6d23a36271860380f5d3ff321a968001