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Enhanced photothermal therapy of biomimetic polypyrrole nanoparticles through improving blood flow perfusion.

Authors :
Wang, Xuejun
Li, Haichun
Liu, Xianping
Tian, Ye
Guo, Huishu
Jiang, Ting
Luo, Zimiao
Jin, Kai
Kuai, Xinping
Liu, Yao
Pang, Zhiqing
Yang, Wuli
Shen, Shun
Source :
Biomaterials. Oct2017, Vol. 143, p130-141. 12p.
Publication Year :
2017

Abstract

In this study, we reported a strategy to improve delivery efficiency of a long-circulation biomimetic photothermal nanoagent for enhanced photothermal therapy through selectively dilating tumor vasculature. By using a simply nanocoating technology, a biomimetic layer of natural red blood cell (RBC) membranes was camouflaged on the surface of photothermal polypyrrole nanoparticles (PPy@RBC NPs). The erythrocyte-mimicking PPy NPs inherited the immune evasion ability from natural RBC resulting in superior prolonged blood retention time. Additionally, excellent photothermal and photoacoustic imaging functionalities were all retained attributing to PPy NPs cores. To further improve the photothermal outcome, the endothelin A (ET A ) receptor antagonist BQ123 was jointly employed to regulate tumor microenvironment. The BQ123 could induce tumor vascular relaxation and increase blood flow perfusion through modulating an ET-1/ET A transduction pathway and blocking the ET A receptor, whereas the vessel perfusion of normal tissues was not altered. Through our well-designed tactic, the concentration of biomimetic PPy NPs in tumor site was significantly improved when administered systematically. The study documented that the antitumor efficiency of biomimetic PPy NPs combined with specific antagonist BQ123 was particularly prominent and was superior to biomimetic PPy NPs ( P < 0.05) and PEGylated PPy NPs with BQ123 ( P < 0.01), showing that the greatly enhanced photothermal treatment could be achieved with low-dose administration of photothermal agents. Our findings would provide a promising procedure for other similar enhanced photothermal treatment by blocking ET A receptor to dramatically increase the delivery of biomimetic photothermal nanomaterials. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01429612
Volume :
143
Database :
Academic Search Index
Journal :
Biomaterials
Publication Type :
Academic Journal
Accession number :
125116597
Full Text :
https://doi.org/10.1016/j.biomaterials.2017.08.004