Literature DB >> 29359551

Degradable NIR-PTT Nanoagents with a Potential Cu@Cu2O@Polymer Structure.

Yu-Wei Tai1, Yi-Chun Chiu2, Po-Ting Wu1, Jiashing Yu1, Yu-Cheng Chin3, Shu-Pao Wu4, Yu-Chun Chuang5, Ho-Chen Hsieh4, Ping-Shan Lai6, Hsiu-Ping Yu6, Mei-Yi Liao3.   

Abstract

Cu@Cu2O@PSMA polymer nanoparticles (Cu@Cu2O@polymer NPs) with near-infrared (NIR) absorption were successfully synthesized in a single-step oxidation reaction of Cu@PSMA polymer NPs at 100 °C for 20 min. The shape, structure, and optical properties of the Cu@Cu2O@polymer NPs were tailorable by controlling the reaction parameters, for example, using the initial Cu@PSMA polymer NP as a template and varying the halide ion content, heating temperature, and reaction time. The Cu@Cu2O@polymer NPs exhibited robust NIR absorption between 650 and 710 nm and possessed superior oxidation resistance in water and culture media. In vitro assays demonstrated the low cytotoxicity of the Cu@Cu2O@PSMA polymer NPs to HeLa cells through an improved cell viability, high IC50, low injury incidence from the supernatant of the partly dissociated Cu@Cu2O@PSMA polymer NPs, and minor generation of reactive oxygen species. More importantly, we demonstrated that the inorganic Cu-based nanocomposite [+0.34 V vs normal hydrogen electrode (NHE)] was degradable in an endogenous H2O2 (+1.78 V vs NHE) environment. Cu ions were detected in the urine of mice, which illustrates the possibility of extraction after the degradation of the Cu-based particles. 'After an treatment of the HeLa cells with the Cu@Cu2O@polymer NPs and a 660 nm light-emitting diode, the photoablation of 50 and 90% cells was observed at NP doses of 20 and 50 ppm, respectively. These results demonstrate that NIR-functional and moderate redox-active Cu@Cu2O@polymer NPs are potential next-generation photothermal therapy (PTT) nanoagents because of combined features of degradation resistance in the physiological environment, enabling the delivery of efficient PTT, a possibly improved ability to selectively harm cancer cells by releasing Cu ions under high-H2O2 and/or low-pH conditions, and ability to be extracted from the body after biodegradation.

Entities:  

Keywords:  Cu nanoparticle; biodegradable; core−shell structure; extraction; near-infrared absorption; photothermal ablation; photothermal-chemotherapy

Year:  2018        PMID: 29359551     DOI: 10.1021/acsami.7b15109

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  4 in total

1.  Fabrication of Anisotropic Cu Ferrite-Polymer Core-Shell Nanoparticles for Photodynamic Ablation of Cervical Cancer Cells.

Authors:  Shuo-Hsiu Kuo; Po-Ting Wu; Jing-Yin Huang; Chin-Pao Chiu; Jiashing Yu; Mei-Yi Liao
Journal:  Nanomaterials (Basel)       Date:  2020-12-04       Impact factor: 5.076

2.  Cu nanoparticles decorated WS2 nanosheets as a lubricant additive for enhanced tribological performance.

Authors:  Zhuang Xu; Wenjing Lou; Gaiqing Zhao; Dongdong Zheng; Junying Hao; Xiaobo Wang
Journal:  RSC Adv       Date:  2019-03-08       Impact factor: 4.036

3.  A universal strategy for the fabrication of single-photon and multiphoton NIR nanoparticles by loading organic dyes into water-soluble polymer nanosponges.

Authors:  Li-Xing Yang; Yu-Cheng Liu; Chang-Hui Cho; Yi-Rou Chen; Chan-Shan Yang; Yin-Lin Lu; Zhiming Zhang; Yi-Tseng Tsai; Yu-Cheng Chin; Jiashing Yu; Hsiu-Min Pan; Wei-Rou Jiang; Zi-Chun Chia; Wei-Shiang Huang; Yu-Lin Chiu; Chun-Kai Sun; Yu-Ting Huang; Li-Ming Chen; Ken-Tsung Wong; Han-Min Huang; Chih-Hsin Chen; Yuan Jay Chang; Chih-Chia Huang; Tzu-Ming Liu
Journal:  J Nanobiotechnology       Date:  2022-07-06       Impact factor: 9.429

4.  Iron oxide@chlorophyll clustered nanoparticles eliminate bladder cancer by photodynamic immunotherapy-initiated ferroptosis and immunostimulation.

Authors:  Yu-Cheng Chin; Li-Xing Yang; Fei-Ting Hsu; Che-Wei Hsu; Te-Wei Chang; Hsi-Ying Chen; Linda Yen-Chien Chen; Zi Chun Chia; Chun-Hua Hung; Wu-Chou Su; Yi-Chun Chiu; Chih-Chia Huang; Mei-Yi Liao
Journal:  J Nanobiotechnology       Date:  2022-08-11       Impact factor: 9.429

  4 in total

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