Rose Bengal Decorated NaYF 4 :Tb Nanoparticles for Low Dose X-ray-Induced Photodynamic Therapy in Cancer Cells.
Debabrata MaitiHao YuBeob Soo KimMitsuru NaitoShinichi YamashitaHyun Jin KimKanjiro MiyataPublished in: ACS applied bio materials (2022)
The use of scintillating nanoparticles (ScNPs) in X-ray-induced photodynamic therapy (X-PDT) is a technique for deep tissue-localized tumor therapy with few side effects. ScNPs transfer X-ray-induced energy to photosensitizers, which generate massive amounts of reactive oxygen species (ROS) and kill cancer cells. Here we fabricated rose bengal (RB)-installed, Tb 3+ -rich NaYF 4 nanocrystals (NaYF 4 :Tb@RB), in which optically inert Y 3+ enables highly efficient energy transfer via high amounts of Tb 3+ doping. NaYF 4 :Tb was prepared via solvothermal synthesis to have an average size of 7.6 nm, followed by coating with poly(maleic anhydride- alt -1-octedecene)-poly(ethylene glycol) with a molecular weight of 2000 (C 18 PMH-PEG 2k ). Further, RB was covalently conjugated to carboxyl groups generated from PMH on NaYF 4 :Tb using an ethylenediamine linker. NaYF 4 :Tb@RB exhibited a hydrodynamic diameter of ∼75 nm with a ζ-potential of -12 mV. NaYF 4 :Tb@RB efficiently generated ROS in cultured luciferase-expressing murine epithelial breast cancer (4T1-luc) cells under low dose X-ray irradiation (0.5 Gy). The ROS generation amounts of NaYF 4 :Tb@RB were 1.5-2-fold higher than those of NaGdF 4 :Tb@RB, in which host nanocrystals were prepared with optically active Gd 3+ . Flow cytometric and confocal microscopic analyses showed higher intracellular ROS production of NaYF 4 :Tb@RB, compared to NaYF 4 :Tb and RB, resulting in higher X-ray-induced DNA damage in cultured 4T1-luc cells. Ultimately, NaYF 4 :Tb@RB elicited significant cytotoxicity after X-ray irradiation (0.5 Gy), while inducing marginal cytotoxicity without X-ray irradiation. Altogether, this research proposes a promising ScNP design for efficient X-PDT agents that make the better use of incident X-ray energy while causing the fewest side effects.
Keyphrases
- photodynamic therapy
- mycobacterium tuberculosis
- dna damage
- reactive oxygen species
- high resolution
- low dose
- dual energy
- cell death
- high glucose
- highly efficient
- diabetic rats
- endothelial cells
- energy transfer
- induced apoptosis
- computed tomography
- type diabetes
- magnetic resonance
- electron microscopy
- young adults
- magnetic resonance imaging
- cardiovascular disease
- quantum dots
- gold nanoparticles
- oxidative stress
- stem cells
- drug delivery
- radiation therapy
- optical coherence tomography
- risk assessment
- mass spectrometry
- cell proliferation
- contrast enhanced
- dna repair
- raman spectroscopy