Article ID Journal Published Year Pages File Type
1543565 Physica E: Low-dimensional Systems and Nanostructures 2016 7 Pages PDF
Abstract

•Sonosensitizing effects of nano-graphene oxide is reported for the first time.•Effects of nano-graphene oxide on ultrasound heat generation are compared to gold and iron oxide nanoparticles.•Ultrasound heat generation in the presence of nanoparticles depends on ultrasound power and nanoparticle concentration.•A novel hyperthermia method using ultrasonic waves and nanotechnology is proposed.

In cancer hyperthermia, ultrasound is considered as an appropriate source of energy to achieve desired therapeutic levels of heating. It is assumed that such a heating is targeted to cancer cells by using nanoparticles as sonosensitization agents. Here, we report the sonosensitizing effects of Nano-Graphene Oxide (NGO) and compare them with gold nanoparticles (AuNPs), Iron Oxide nanoparticles (IONPs).Experiments were conducted to explore the effects of nanoparticle type and concentration, as well as ultrasound power, on transient heating up of the solutions exposed by 1 MHz ultrasound. Nanoparticles concentration was selected from 0.25 to 2.5 mg/ml and the solutions were exposed by ultrasound powers from 1 to 8 W. Real time temperature monitoring was done by a thermocouple and obtained data was analyzed.Temperature profiles of various nanoparticle solutions showed the higher heating rates, in comparison to water. Heating rise was strongly depended on nanoparticles concentration and ultrasound power. AuNPs showed a superior efficiency in heat generation enhancement in comparison to IONPs and NGO.Our result supports the idea of sonosensitizing capabilities of AuNPs, IONPs, and NGO. Targeted hyperthermia may be achievable by preferential loading of tumor with nanoparticles and subsequent ultrasound irradiation.

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Physical Sciences and Engineering Materials Science Electronic, Optical and Magnetic Materials
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