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Magnetic nanoparticles with high specific absorption rate of electromagnetic energy at low field strength for hyperthermia therapy

机译:在低场强下具有高电磁能比吸收率的磁性纳米粒子用于热疗

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摘要

Magnetic nanoparticles (MNPs), referred to as the Dartmouth MNPs, which exhibit high specific absorption rate at low applied field strength have been developed for hyperthermia therapy applications. The MNPs consist of small (2–5 nm) single crystals of gamma-Fe2O3 with saccharide chains implanted in their crystalline structure, forming 20–40 nm flower-like aggregates with a hydrodynamic diameter of 110–120 nm. The MNPs form stable (>12 months) colloidal solutions in water and exhibit no hysteresis under an applied quasistatic magnetic field, and produce a significant amount of heat at field strengths as low as 100 Oe at 99–164 kHz. The MNP heating mechanisms under an alternating magnetic field (AMF) are discussed and analyzed quantitatively based on (a) the calculated multi-scale MNP interactions obtained using a three dimensional numerical model called the method of auxiliary sources, (b) measured MNP frequency spectra, and (c) quantified MNP friction losses based on magneto-viscous theory. The frequency responses and hysteresis curves of the Dartmouth MNPs are measured and compared to the modeled data. The specific absorption rate of the particles is measured at various AMF strengths and frequencies, and compared to commercially available MNPs. The comparisons demonstrate the superior heating properties of the Dartmouth MNPs at low field strengths (<250 Oe). This may extend MNP hyperthermia therapy to deeper tumors that were previously non-viable targets, potentially enabling the treatment of some of the most difficult cancers, such as pancreatic and rectal cancers, without damaging normal tissue.
机译:已经开发出磁性纳米颗粒(MNP),称为达特茅斯MNP,其在低施加场强度下显示出高的比吸收率,已用于热疗治疗应用。 MNP由γ-Fe2O3的小(2–5 nm)单晶组成,并在其晶体结构中植入了糖链,形成了20–40 nm的花状聚集体,其流体动力学直径为110–120 nm。 MNP在水中形成稳定的(> 12个月)胶体溶液,在施加的准静态磁场下没有磁滞现象,并且在99-164 kHz的场强低至100 Oe时会产生大量的热量。基于(a)使用称为辅助源方法的三维数值模型获得的计算出的多尺度MNP相互作用,(b)测量的MNP频谱,讨论并定量分析了交变磁场(AMF)下的MNP加热机理;以及(c)根据磁粘性理论量化MNP摩擦损失。测量达特茅斯MNP的频率响应和磁滞曲线,并将其与建模数据进行比较。在各种AMF强度和频率下测量颗粒的比吸收率,并将其与市售MNP进行比较。比较结果表明,达特茅斯MNP在低场强(<250 Oe)下具有优异的加热性能。这可能会将MNP热疗疗法扩展到以前无法生存的更深层肿瘤,从而有可能在不损害正常组织的情况下治疗某些最困难的癌症,例如胰腺癌和直肠癌。

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