Nanobiomagentics and Bioelectronics Laboratory (NB2L), Department of Electrical Engineering, University of South Carolina, 301 Main Street, Columbia, SC, 29208, USA.
Biomedical Engineering Program, College of Engineering and Computing, University of South Carolina, 301 Main Street, Columbia, SC, 29208, USA.
Sci Rep. 2021 Nov 11;11(1):22028. doi: 10.1038/s41598-021-01321-3.
Reliable measurement of heating power of magnetic nanofluids (MNs) to accurately predict the AC heat-induction performance in tumors is highly desirable for clinical magnetic nanofluids hyperthermia (MNFH) application because it can save time for screening the performance of newly developed MNFH agent and minimize the over-use of animals dramatically. Here, a bio-mimicking phantom model, called Pseudo-Tumor Environment System (P-TES), biochemically designed by considering the external and internal critical factors related to the complex biological environments is proposed to provide a highly reliable evaluation method of heating performance of MNs for in-vivo MNFH applications. According to the experimentally analyzed results, the heating power of MNs measured using the P-TES is well accorded with the heating temperature measured in the tumors during in-vivo MNFH. This result strongly demonstrates that the proposed P-TES can be recommended as a standardized measurement method of heating performance of MNs for clinical MNFH application.
可靠测量磁纳米流体(MNs)的加热功率对于临床磁纳米流体热疗(MNFH)应用来说是非常理想的,因为它可以节省筛选新开发的 MNFH 试剂性能的时间,并显著减少对动物的过度使用。在这里,提出了一种仿生虚拟模型,称为 Pseudo-Tumor Environment System(P-TES),它是通过考虑与复杂生物环境相关的外部和内部关键因素来生化设计的,为体内 MNFH 应用提供了一种高度可靠的 MNs 加热性能评估方法。根据实验分析结果,使用 P-TES 测量的 MNs 的加热功率与体内 MNFH 期间肿瘤内测量的加热温度非常吻合。这一结果有力地证明了所提出的 P-TES 可以推荐作为临床 MNFH 应用中 MNs 加热性能的标准化测量方法。