Salloum M, Ma R H, Weeks D, Zhu L
Department of Mechanical Engineering, University of Maryland Baltimore County, Baltimore, MD 21250, USA.
Int J Hyperthermia. 2008 Jun;24(4):337-45. doi: 10.1080/02656730801907937.
In magnetic nanoparticle hyperthermia for cancer treatment, controlling the heat distribution and temperature elevations is an immense challenge in clinical applications. In this study we evaluate magnetic nanofluid transport and heat distribution induced by commercially available magnetic nanoparticles injected into the extracellular space of biological tissue using agarose gel with porous structures similar to human tissue. The nanofluid distribution in the gel is examined via digital images of the nanofluid spreading in the gel. A radio-frequency electromagnetic field is applied to the gel following the nanofluid injection and the initial rates of temperature rise at various locations are measured to obtain the specific absorption rate (SAR) distribution. By adjusting the gel concentration and injection flow rate, the results have demonstrated that a relatively low injection rate leads to a spherically shaped nanofluid distribution in the gels which is desirable for controlling temperature elevations. The SAR distribution shows that the nanoparticle distribution in the gel is not uniform with a high concentration of the nanoparticles close to the injection site. We believe that the experimental study is the first step towards providing guidance for designing better treatment protocol for future clinical applications.
在用于癌症治疗的磁性纳米颗粒热疗中,控制热分布和温度升高是临床应用中的一项巨大挑战。在本研究中,我们使用具有类似于人体组织的多孔结构的琼脂糖凝胶,评估注入生物组织细胞外空间的市售磁性纳米颗粒所引起的磁性纳米流体传输和热分布。通过纳米流体在凝胶中扩散的数字图像来检查纳米流体在凝胶中的分布。在注入纳米流体后,对凝胶施加射频电磁场,并测量各个位置的初始升温速率以获得比吸收率(SAR)分布。通过调整凝胶浓度和注入流速,结果表明较低的注入速率会导致凝胶中纳米流体呈球形分布,这对于控制温度升高是理想的。SAR分布表明凝胶中的纳米颗粒分布不均匀,靠近注入部位的纳米颗粒浓度较高。我们认为,该实验研究是为未来临床应用设计更好的治疗方案提供指导的第一步