Darwish Mohamed S A, Kim Hohyeon, Bui Minh Phu, Le Tuan-Anh, Lee Hwangjae, Ryu Chiseon, Lee Jae Young, Yoon Jungwon
School of Integrated Technology, Gwangju Institute of Science and Technology, Gwangju 61005, Korea.
Egyptian Petroleum Research Institute, 1 Ahmed El-Zomor Street, El Zohour Region, Nasr City, Cairo 11727, Egypt.
Nanomaterials (Basel). 2021 Apr 23;11(5):1096. doi: 10.3390/nano11051096.
Multifunctional magnetic nanomaterials displaying high specific loss power (SLP) and high imaging sensitivity with good spatial resolution are highly desired in image-guided cancer therapy. Currently, commercial nanoparticles do not sufficiently provide such multifunctionality. For example, Resovist has good image resolution but with a low SLP, whereas BNF has a high SLP value with very low image resolution. In this study, hydrophilic magnesium iron oxide@tetramethyl ammonium hydroxide nanoparticles were prepared in two steps. First, hydrophobic magnesium iron oxide nanoparticles were fabricated using a thermal decomposition technique, followed by coating with tetramethyl ammonium hydroxide. The synthesized nanoparticles were characterized using XRD, DLS, TEM, zeta potential, UV-Vis spectroscopy, and VSM. The hyperthermia and imaging properties of the prepared nanoparticles were investigated and compared to the commercial nanoparticles. One-dimensional magnetic particle imaging indicated the good imaging resolution of our nanoparticles. Under the application of a magnetic field of frequency 614.4 kHz and strength 9.5 kA/m, nanoparticles generated heat with an SLP of 216.18 W/g, which is much higher than that of BNF (14 W/g). Thus, the prepared nanoparticles show promise as a novel dual-functional magnetic nanomaterial, enabling both high performance for hyperthermia and imaging functionality for diagnostic and therapeutic processes.
在图像引导的癌症治疗中,非常需要具有高比损耗功率(SLP)、高成像灵敏度和良好空间分辨率的多功能磁性纳米材料。目前,市售纳米颗粒无法充分提供这种多功能性。例如,Resovist具有良好的图像分辨率,但比损耗功率较低,而BNF的比损耗功率值较高,但图像分辨率非常低。在本研究中,通过两步法制备了亲水性氢氧化四甲基铵包覆的镁铁氧化物纳米颗粒。首先,采用热分解技术制备疏水性镁铁氧化物纳米颗粒,然后用氢氧化四甲基铵进行包覆。使用XRD、DLS、TEM、zeta电位、紫外可见光谱和VSM对合成的纳米颗粒进行了表征。研究了所制备纳米颗粒的热疗和成像性能,并与市售纳米颗粒进行了比较。一维磁性粒子成像表明我们的纳米颗粒具有良好的成像分辨率。在频率为614.4 kHz、强度为9.5 kA/m的磁场作用下,纳米颗粒产生的比损耗功率为216.18 W/g,远高于BNF(14 W/g)。因此,所制备的纳米颗粒有望成为一种新型的双功能磁性纳米材料,在热疗方面具有高性能,在诊断和治疗过程中具有成像功能。