首页> 外文期刊>Journal of biomedical materials research, Part A >Tailored magnetic nanoparticles for optimizing magnetic fluid hyperthermia.
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Tailored magnetic nanoparticles for optimizing magnetic fluid hyperthermia.

机译:量身定制的磁性纳米粒子,用于优化磁流体热疗。

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Magnetic Fluid Hyperthermia (MFH) is a promising approach towards adjuvant cancer therapy that is based on the localized heating of tumors using the relaxation losses of iron oxide magnetic nanoparticles (MNPs) in alternating magnetic fields (AMF). In this study, we demonstrate optimization of MFH by tailoring MNP size to an applied AMF frequency. Unlike conventional aqueous synthesis routes, we use organic synthesis routes that offer precise control over MNP size (diameter ~10 to 25 nm), size distribution, and phase purity. Furthermore, the particles are successfully transferred to the aqueous phase using a biocompatible amphiphilic polymer, and demonstrate long-term shelf life. A rigorous characterization protocol ensures that the water-stable MNPs meet all the critical requirements: (1) uniform shape and monodispersity, (2) phase purity, (3) stable magnetic properties approaching that of the bulk, (4) colloidal stability, (5) substantial shelf life, and (6) pose no significant in vitro toxicity. Using a dedicated hyperthermia system, we then identified that 16 nm monodisperse MNPs (σ-0.175) respond optimally to our chosen AMF conditions (f = 373 kHz, H? = 14 kA/m); however, with a broader size distribution (σ-0.284) the Specific Loss Power (SLP) decreases by 30%. Finally, we show that these tailored MNPs demonstrate maximum hyperthermia efficiency by reducing viability of Jurkat cells in vitro, suggesting our optimization translates truthfully to cell populations. In summary, we present a way to intrinsically optimize MFH by tailoring the MNPs to any applied AMF, a required precursor to optimize dose and time of treatment.
机译:磁流体热疗(MFH)是一种有前途的辅助癌症治疗方法,该方法基于使用交变磁场(AMF)中氧化铁磁性纳米颗粒(MNP)的弛豫损耗对肿瘤进行局部加热。在这项研究中,我们展示了通过将MNP大小调整为适用的AMF频率来优化MFH。与常规的水合成路线不同,我们使用有机合成路线来精确控制MNP尺寸(直径约10至25 nm),尺寸分布和相纯度。此外,使用生物相容性的两亲性聚合物可将颗粒成功转移到水相中,并显示出长期的保存期限。严格的表征方案可确保水稳定的MNP满足所有关键要求:(1)均匀的形状和单分散性;(2)相纯度;(3)接近本体的稳定磁性能;(4)胶体稳定性;( 5)足够的保质期,和(6)没有明显的体外毒性。然后,使用专用的高温系统,我们确定16 nm单分散MNP(σ-0.175)对我们选择的AMF条件(f = 373 kHz,H + = 14 kA / m)具有最佳响应;但是,在较大的尺寸分布(σ-0.284)下,比损耗功率(SLP)降低了30%。最后,我们表明这些定制的MNP通过降低Jurkat细胞的体外存活力证明了最高的热疗效率,这表明我们的优化可以真实地转化为细胞群体。总而言之,我们提出了一种通过将MNP调整为适用于任何应用的AMF来本质上优化MFH的方法,AMF是优化剂量和治疗时间所需的前体。

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