|
|
Received: 01 December 2016
|
|
|
|
|
[1] |
李黎波,李文敏,项蕾红,等. 光动力疗法在中国的应用与临床研究[J]. 中国激光医学杂志, 2012, 21(5): 278-307.
|
[2] |
Kosaka N, Ogawa M, Choyke P L, et al. Clinical implications of near-infrared fluorescence imaging in cancer [J]. Future Oncol, 2009, 5(9): 1501-1511.
|
[3] |
Zhang P, Steelant W, Kumar M, et al. Versatile Photosensitizers for Photodynamic Therapy at Infrared Excitation [J]. J Am Chem Soc, 2007, 129(15): 4526-4527.
|
[4] |
Tian Gan, Ren Wenlu, Yan Liang, et al. Red-Emitting upconverting nanoparticles for photodynamic therapy in cancer cells under near-infrared excitation [J]. Small, 2013, 9(11): 1929-1938.
|
[5] |
Wang Meng, Chen Zhuo, Zheng Wei, et al. Lanthanide-doped upconversion nanoparticles electrostatically coupled with photosensitizers for near-infrared-triggered photodynamic therapy [J]. Nanoscale, 2014, 6(14): 8274-8282.
|
[6] |
Van Dongen G A, Visser G W, Vrouenraets M B. Photosensitizer-antibody conjugates for detection and therapy of cancer [J]. Adv Drug Deliv Rev, 2004, 56(1): 31-52.
|
[7] |
Ferrari M. Cancer nanotechnology: opportunities and challenges [J]. Nat Rev Cancer, 2005, 5(3): 161-171.
|
[8] |
Cui S, Yin D, Chen Y, et al. In vivo targeted deep-tissue photodynamic therapy based on near-infrared light triggered upconversion nanoconstruct [J]. ACS Nano, 2013, 7(1): 676-688.
|
[9] |
Zhou Aiguo, Wei Yanchun, Wu Baoyan, et al. Pyropheophorbide A and c (RGDyK) comodified chitosan-wrapped upconversion nanoparticle for targeted near-infrared photodynamic therapy [J]. Mol Pharm, 2012, 9(6): 1580-1589.
|
[10] |
Yuan Quan, Wu Yuan, Wang Jie, et al. Targeted bioimaging and photodynamic therapy nanoplatform using an aptamer-guided G-Quadruplex DNA carrier and near-infrared light[J]. Angew Chem Int Ed Engl, 2013, 52(52):13965-13969.
|
[11] |
Liang L, Care A, Zhang R, et al. Facile assembly of functional upconversion nanoparticles for targeted cancer imaging and photodynamic therapy [J]. ACS Appl Mater Interfaces, 2016, 8(19): 11945-11953.
|
[12] |
Idris N M, Gnanasammandhan1 M K, Zhang J, et al. In vivo photodynamic therapy using upconversion nanoparticles as remote-controlled nanotransducers [J]. Nat Med, 2012, 18(10): 1580-1585.
|
[13] |
Liu Xiaomin, Zheng Min, Kong Xianggui, et al. Separately doped upconversion-C60 nanoplatform for NIR imaging-guided photodynamic therapy of cancer cells [J]. Chem Commun (Camb), 2013, 49(31): 3224-3226.
|
[14] |
Dou Q Q, Rengaramchandran A, Selvan S T, et al. Core -shell upconversion nanoparticle-semiconductor heterostructures for photodynamic therapy [J]. Sci Rep, 2015, 5: 8252.
|
[15] |
Lucky S S, Idris N M, Li Zhengquan, et al. Titania coated upconversion nanoparticles for near-infrared light triggered photodynamic therapy [J]. ACS Nano, 2015, 9(1): 191-205.
|
[16] |
Fowley C, Nomikou N, McHale A P, et al. Extending the tissue penetration capability of conventional photosensitisers: a carbon quantum dot-protoporphyrin IX conjugate for use in two-photon excited photodynamic therapy [J]. Chem Commun (Camb), 2013, 49(79): 8934-8936.
|
[17] |
Wang Chao, Tao Huiquan, Cheng Liang, et al. Near-infrared light induced in vivo photodynamic therapy of cancer based on upconversion nanoparticles [J]. Biomaterials, 2011, 32(26): 6145-6154.
|
[18] |
Zhang Ling’e, Zeng Leyong, Pan Yuanwei, et al. Inorganic photosensitizer coupled Gd-based upconversion luminescent nanocomposites for in vivo magnetic resonance imaging and near-infrared-responsive photodynamic therapy in cancers [J]. Biomaterials, 2015, 44(1): 82-90.
|
[19] |
Liu Kai, Liu Xiaomin, Zeng Qinghui, et al. Covalently assembled NIR nanoplatform for simultaneous fluorescence imaging and photodynamic therapy of cancer cells [J]. Acs Nano, 2012, 6(5): 4054-4062.
|
[20] |
Zhao Zengxia, Han Yuning, Lin Chenghong, et al. Multifunctional core-shell upconverting nanoparticles for imaging and photodynamic therapy of liver cancer cells [J]. Chem Asian J, 2012, 7(4): 830-837.
|
[21] |
Yang Chunna, Liu Qiuling, He Dacheng, et al. Dual-modal imaging and photodynamic therapy using upconversion nanoparticles for tumor cells [J]. Analyst, 2014, 139(24): 6414-6420.
|
[22] |
Lu S, Tu D, Hu P, et al. Multifunctional nano-bioprobes based on rattle-structured upconverting luminescent nanoparticles [J]. Angew Chem Int Ed Engl, 2015, 54(27): 7915-7919.
|
[23] |
Park Y I, Kim H M, Kim J H, et al. Theranostic probe based on lanthanide-doped nanoparticles for simultaneous in vivo dual-modal imaging and photodynamic therapy [J]. Adv Mater, 2012, 24(42): 5755-5761.
|
[24] |
Han J, Xia H, Wu Y, et al. Single-layer MoS2 nanosheet grafted upconversion nanoparticles for near-infrared fluorescence imaging-guided deep tissue cancer phototherapy[J]. Nanoscale, 2016, 8(15): 7861-7865.
|
[25] |
Yin Meili, Ju Enguo, Chen Zhaowei, et al. Upconverting nanoparticles with a mesoporous TiO2 shell for near-infrared-triggered drug delivery and synergistic targeted cancer therapy [J]. Chemistry, 2014, 20(43): 14012-14017.
|
[26] |
Zeng Leyong, Pan Yuanwei, Tian Ying, et al. Doxorubicin-loaded NaYF4: Yb/Tm-TiO2 inorganic photosensitizers for NIR-triggered photodynamic therapy and enhanced chemotherapy in drug-resistant breast cancers [J]. Biomaterials, 2015, 57(1): 93-106.
|
[27] |
Gao W, Wang Z, Lv L, et al. Photodynamic therapy induced enhancement of tumor vasculature permeability using an upconversion nanoconstruct for improved intratumoral nanoparticle delivery in deep tissues [J]. Theranostics, 2016, 6(8): 1131-1144.
|
[28] |
Zhan Q, Qian J, Liang H, et al. Using 915 nm laser excited Tm3+/Er3+/Ho3+- doped NaYbF4 upconversion nanoparticles for in vitro and deeper in vivo bioimaging without overheating irradiation [J]. Acs Nano, 2011, 5(5): 3744-3757.
|
[29] |
Wang D, Xue B, Kong X, et al. 808 nm driven Nd3+-sensitized upconversion nanostructures for photodynamic therapy and simultaneous fluorescence imaging [J]. Nanoscale, 2015, 7(1): 190-197.
|
[30] |
Liu X, Que I, Kong X, et al. In vivo 808 nm image-guided photodynamic therapy based on an upconversion theranostic nanoplatform [J]. Nanoscale, 2015, 7(36): 14914-14923.
|
[31] |
Zeng L, Pan Y, Zou R, et al. 808 nm-excited upconversion nanoprobes with low heating effect for targeted magnetic resonance imaging and high-efficacy photodynamic therapy in HER2-overexpressed breast cancer [J]. Biomaterials, 2016, 103: 116-127.
|
[32] |
Hou Z, Deng K, Li C, et al. 808 nm Light-triggered and hyaluronic acid-targeted dual-photosensitizers nanoplatform by fully utilizing Nd (3+)-sensitized upconversion emission with enhanced anti-tumor efficacy [J]. Biomaterials, 2016, 101: 32-46.
|
[1] |
. [J]. Med. J. Chin. Peop. Armed Poli. Forc., 2017, 28(2): 203-206. |
|
|
|