Natural-Origin Hypocrellin-HSA Assembly for Highly Efficient NIR Light-Responsive Phototheranostics against Hypoxic Tumors

2019 ◽  
Vol 11 (48) ◽  
pp. 44989-44998 ◽  
Author(s):  
Chuangli Zhang ◽  
Jiasheng Wu ◽  
Weimin Liu ◽  
Xiuli Zheng ◽  
Pengfei Wang
RSC Advances ◽  
2015 ◽  
Vol 5 (56) ◽  
pp. 45416-45419 ◽  
Author(s):  
Sk. Sheriff Shah ◽  
S. Karthik ◽  
N. D. Pradeep Singh

A highly efficient one-pot strategy has been developed for the synthesis of disulfide in the presence of air under the irradiation of Vis/NIR light.


2016 ◽  
Vol 4 (8) ◽  
pp. 1584-1588 ◽  
Author(s):  
M. Carboni ◽  
M. Carravetta ◽  
X. L. Zhang ◽  
E. Stulz

Highly efficient composite films, consisting of silica coated and functionalised silver nanoprisms (SNPs) which are covalently embedded in a PMMA matrix, are presented as a low-cost material to reduce thermal radiation flux with low impact on daylight transmission.


2016 ◽  
Vol 52 (51) ◽  
pp. 7939-7942 ◽  
Author(s):  
Yu Zhang ◽  
Ting-Ting Shen ◽  
Alexander M. Kirillov ◽  
Wei-Sheng Liu ◽  
Yu Tang

Smart nanocomposites were designed and applied for an efficient synergistic photodynamic and photothermal therapy under single NIR laser excitation to overcome the hypoxia-induced drug resistance.


2019 ◽  
Vol 7 (23) ◽  
pp. 13948-13955 ◽  
Author(s):  
Qingbao Guan ◽  
Guanghui Lin ◽  
Yuzhu Gong ◽  
Jingfeng Wang ◽  
Weiyi Tan ◽  
...  

A soft hydrogel based self-healing triboelectric nanogenerator (HS-TENG) is highly deformable, and both mechanically and electrically self-healable upon exposure to water spraying and near-infrared (NIR) light.


2021 ◽  
Vol 17 (6) ◽  
pp. 1131-1147
Author(s):  
Sijin Xiang ◽  
Zhongxiong Fan ◽  
Duo Sun ◽  
Tianbao Zhu ◽  
Jiang Ming ◽  
...  

The overall eradication of biofilm-mode growing bacteria holds significant key to the answer of a series of infection-related health problems. However, the extracellular matrix of bacteria biofilms disables the traditional antimicrobials and, more unfortunately, hampers the development of the anti-infectious alternatives. Therefore, highly effective antimicrobial agents are an urgent need for biofilm-infection control. Herein, a PEGylated palladium nanozyme (Pd-PEG) with peroxidase (POD)-like activity for highly efficient biofilm infection control is reported. Pd-PEG also shows the intrinsic photothermal effect as well as near-infrared (NIR) light-enhanced POD-like activity in the acidic environment, thereby massively destroying the biofilm matrix and killing the adhering bacteria. Importantly, the antimicrobial mechanism of the synergistic treatment based on Pd-PEG+H2O2+NIR combination was disclosed. In vitro and in vivo results illustrated the designed Pd-PEG+H2O2 +NIR treatment reagent possessed outstanding antibacterial and biofilms elimination effects with negligible biotoxicity. This work hopefully facilitates the development of metal-based nanozymes in biofilm related infectious diseases.


Author(s):  
Liang Hong ◽  
Jia Zhang ◽  
Junxian Geng ◽  
Junle Qu ◽  
Liwei Liu

Photodynamic therapy (PDT) has become an attractive tumor treatment modality because of its noninvasive feature and low side effects. However, extreme hypoxia inside solid tumors severely impedes PDT therapeutic outcome. To overcome this obstacle, various strategies have been developed recently. Among them, in situ oxygen generation, which relies on the decomposition of tumor endogenous H2O2, and oxygen delivery tactic using high oxygen loading capacity of hemoglobin or perfluorocarbons, have been widely studied. The in situ oxygen generation strategy has high specificity to tumors, but its oxygen-generating efficiency is limited by the intrinsically low tumor H2O2 level. In contrast, the oxygen delivery approach holds advantage of high oxygen loading efficiency, nevertheless lacks tumor specificity. In this work, we prepared a nanoemulsion system containing H2O2-responsive catalase, highly efficient oxygen carrier perfluoropolyether (PFPE), and a near-infrared (NIR) light activatable photosensitizer IR780, to combine the high tumor specificity of the in situ oxygen generation strategy and the high efficiency of the oxygen delivery strategy. This concisely prepared nanoplatform exhibited enhanced and H2O2-controllable production of singlet oxygen under light excitation, satisfactory cytocompatibility, and ability to kill cancer cells under NIR light excitation. This highlights the potential of this novel nanoplatform for highly efficient and selective NIR light mediated PDT against hypoxic tumors. This research provides new insight into the design of intelligent nanoplatform for relieving tumor hypoxia and enhancing the oxygen-dependent PDT effects in hypoxic tumors.


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