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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >In Vivo and Real-Time Measurement of Magnetic Nanoparticles Distribution in Animals by Scanning SQUID Biosusceptometry for Biomedicine Study
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In Vivo and Real-Time Measurement of Magnetic Nanoparticles Distribution in Animals by Scanning SQUID Biosusceptometry for Biomedicine Study

机译:通过扫描SQUID生物敏感性用于生物医学研究的动物体内和磁性纳米粒子分布的实时测量

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摘要

Magnetic nanoparticles have been widely applied to biomagnetism, such as drug deliver, magnetic labeling, and contrast agent for in vivo image, etc. To localize the distribution of these magnetic particles in living organism is the first important issue to confirm the effects of magnetic nanoparticles and also evaluate the possible untoward effects. In this study, a scanning high T$_c$ rf-SQUID superconducting quantum interference devices (SQUIDs) biosusceptometry, composed of static SQUID unit and scanning coil sets, is developed for biomedicine study with the advantages of easy operation and unshielded environment. The characteristics tests showed that the system had the low noise of 8 pT/Hz at 400 Hz and the high sensitivity with the minimum detectable magnetization around 4.5 × 10$^{-3}$ EMU at distance of 13 mm. A magnetic nanoparticle detection test, performed by ex vivo scanning of the magnetic fluids filled capillary under swine skin for simulation of blood vessels in living bodies, confirmed that the system is feasible for dynamic tracking of magnetic nanoparticles. Based on this result, we performed further studies in rats to clarify the dynamic distribution of magnetic nanoparticle in living organism for the pharmacokinetics analysis like drug delivers, and propose the possible physiological metabolism of intravenous magnetic nanoparticles.
机译:磁性纳米颗粒已广泛应用于生物磁性,例如药物递送,磁性标记和体内成像的造影剂等。对这些磁性颗粒在生物体内的分布进行定位是确认磁性纳米颗粒作用的第一个重要问题并评估可能的不良影响。在这项研究中,开发了一种由静态SQUID单元和扫描线圈组组成的扫描型高T $ _c $ rf-SQUID超导量子干扰设备(SQUIDs)生物敏感性测定法,用于生物医学研究,具有操作简便和不受屏蔽的优点。特性测试表明,该系统在400 Hz时具有8 pT / Hz的低噪声,在13 mm距离处具有4.5×10 $ ^ {-3} $ EMU的最小可检测磁化强度,具有高灵敏度。通过离体扫描猪皮下充满磁性液体的毛细管进行的磁性纳米粒子检测测试,以模拟活体中的血管,证实该系统可用于动态跟踪磁性纳米粒子。基于此结果,我们在大鼠中进行了进一步的研究,以阐明磁性纳米粒子在活生物体中的动态分布,以便像药物输送一样进行药代动力学分析,并提出静脉内磁性纳米粒子的可能的生理代谢。

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