Evolution of Highly Biocompatible and Thermally Stable YVO 4 :Er 3+ /Yb 3+ Upconversion Mesoporous Hollow Nanospheriods as Drug Carriers for Therapeutic Applications.
Eluri PavitraHoomin LeeSeung Kyu HwangJin Young ParkYoung-Kyu HanGanji Seeta Rama RajuYoung-Kyu HanPublished in: Nanomaterials (Basel, Switzerland) (2022)
In recent times, upconversion nanomaterials with mesoporous hollow structures have gained significant interest as a prospective nano-platform for cancer imaging and therapeutic applications. In this study, we report a highly biocompatible YVO 4 :1Er 3+ /10Yb 3+ upconversion mesoporous hollow nanospheriods (YVO 4 :Er 3+ /Yb 3+ UC-MHNSPs) by a facile and rapid self-sacrificing template method. The Rietveld analysis confirmed their pure phase of tetragonal zircon structure. Nitrogen adsorption-desorption isotherms revealed the mesoporous nature of these UC-MHNSPs and the surface area is found to be ~87.46 m 2 /g. Under near-infrared excitation (980 nm), YVO 4 :Er 3+ /Yb 3+ UC-MHNSPs showed interesting color tunability from red to green emission. Initially (at 0.4 W), energy back transfer from Er 3+ to Yb 3+ ions leads to the strong red emission. Whereas at high pump powers (1 W), a fine green emission is observed due to the dominant three-photon excitation process and traditional energy transfer route from Er 3+ to Yb 3+ ions. The bright red light from the membrane of HeLa cells confirmed the effective cellular uptake of YVO 4 :Er 3+ /Yb 3+ UC-MHNSPs. The resonant decrease in cell viability on increasing the concentration of curcumin conjugated YVO 4 :Er 3+ /Yb 3+ UC-MHNSPs established their excellent antitumor activity. Therefore, the acquired results indicate that these YVO 4 :Er 3+ /Yb 3+ UC-MHNSPs are promising drug carriers for bioimaging and various therapeutic applications.
Keyphrases
- energy transfer
- quantum dots
- endoplasmic reticulum
- estrogen receptor
- breast cancer cells
- metal organic framework
- photodynamic therapy
- highly efficient
- sensitive detection
- high resolution
- squamous cell carcinoma
- ionic liquid
- induced apoptosis
- young adults
- cell cycle arrest
- high throughput
- signaling pathway
- lymph node metastasis
- single cell
- liquid chromatography
- endoplasmic reticulum stress
- papillary thyroid
- solid phase extraction