한빛사논문
서울대학교
Wooseung Lee1,*, MiyeonJeon1,*, Jinyeong Choi1, Chiwoo Oh1, Gaeun Kim1, Seongmoon Jung1,2, Changsoon Kim3,4, Sung-Joon Ye1, Hyung-Jun Im1,5
1Department of Applied Bioengineering, Graduate School of Convergence Science and Technology, Seoul National University, Seoul (08826), Republic of Korea
2Department of Radiation Oncology, Seoul National University Hospital, Seoul(03080), Republic of Korea
3Department of Intelligence and Information, Graduate School of Convergence Science and Technology, Seoul National University, Seoul (08826), Republic of Korea
4Inter-University Semiconductor Research Center, Seoul National University, Seoul (08826), Republic of Korea
5Department of Molecular Medicine and Biopharmaceutical Sciences, Graduate School of Convergence Science and Technology, Seoul National University, Seoul (08826), Republic of Korea
Corresponding author:Hyung-Jun Im, MD, PhD
*Author Contributions
These authors contributed equally.
Abstract
Photodynamic therapy (PDT) is an effective anticancer strategy with a higher selectivity and fewer adverse effects than conventional therapies; however, shallow tissue penetration depth of light has hampered the clinical utility of PDT. Recently, reports have indicated that Cerenkov luminescence-induced PDT may overcome the tissue penetration limitation of conventional PDT. However, the effectiveness of this method is controversial because of its low luminescence intensity. Herein, we developed a radiolabeled diethylenetriaminepentaacetic acid chelated Eu3+ (Eu-DTPA)/photosensitizer (PS) loaded liposome (Eu/PS-lipo) that utilizes ionizing radiation from radioisotopes for effective in vivo imaging and radioluminescence-induced PDT. We utilized Victoria blue-BO (VBBO) as a PS and observed an efficient luminescence resonance energy transfer between Eu-DTPA and VBBO. Furthermore, 64Cu-labeled Eu lipo demonstrated a strong radioluminescence with a 2-fold higher intensity than Cerenkov luminescence from free 64Cu. In our radioluminescence liposome, radioluminescence energy transfer showed a 6-fold higher energy transfer efficiency to VBBO than Cerenkov luminescence energy transfer (CLET). 64Cu-labeled Eu/VBBO lipo (64Cu-Eu/VBBO lipo) showed a substantial tumor uptake of up to 19.3%ID/g by enhanced permeability and retention effects, as revealed by in vivo positron emission tomography. Finally, the PDT using 64Cu-Eu/VBBO lipo demonstrated significantly higher in vitro and in vivo therapeutic effects than Cerenkov luminescence-induced PDT using 64Cu-VBBO lipo. This study envisions a great opportunity for clinical PDT application by establishing the radioluminescence liposome which has high tumor targeting and efficient energy transfer capability from radioisotopes.
KEYWORDS:photodynamic therapy, europium, radioluminescence, therapeutic, positron emission tomography
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