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Monitoring gold nanoparticle distribution with high resolution using Photo-Magnetic Imaging

机译:使用光磁成像技术以高分辨率监测金纳米颗粒的分布

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One major advantage of using gold nanoparticles is the possibility of tuning their absorption peak by modifying their surface plasma resonance. They are proven to be a promising multi-functional platform that can be used for many imaging and therapeutic applications. As a true multi-modality imaging technique, Photo-Magnetic Imaging (PMI) has a great potential to monitor the distribution of gold nanoparticles non-invasively with MR resolution. With a simple addon of a continuous wave laser to an MRI system, PMI uses the laser induced temperature increase, measured by MR Thermometry (MRT), to provide tissue optical absorption maps at MR resolution. PMI utilizes a Finite Element Method (FEM) based algorithm to solve the combined diffusion and bio-heat equations. This system of combined equations models the photon distribution in the tissue and heat generation due to the absorption of the light and consequent heat diffusion. The key characteristic of PMI is that its spatial resolution is preserved at any depth as long as the temperature change within the imaged medium is detectable by MRT. Agar phantoms containing gold nanoparticles are used to validate the ability of PMI in monitoring their distribution. To make PMI suitable for diagnostic purposes, the laser powers has been kept under the American National Standard Institute maximum skin exposure limits in mis study.
机译:使用金纳米颗粒的一个主要优点是可以通过改变其表面等离子体共振来调节其吸收峰。它们被证明是可以用于许多成像和治疗应用的有前途的多功能平台。作为一种真正的多模态成像技术,光磁成像(PMI)具有以MR分辨率无创地监测金纳米颗粒分布的巨大潜力。通过将简单的连续波激光器附加到MRI系统,PMI利用由MR测温(MRT)测量的激光引起的温度升高,以MR分辨率提供组织光学吸收图。 PMI利用基于有限元方法(FEM)的算法来求解扩散和生物热方程的组合。该组合方程系统模拟了光子在组织中的分布以及由于光的吸收和随之而来的热扩散而产生的热量。 PMI的关键特性是,只要可以通过MRT检测到成像介质内的温度变化,就可以在任何深度保持其空间分辨率。含有金纳米颗粒的琼脂模型用于验证PMI监测其分布的能力。为了使PMI适于诊断目的,在研究不当的情况下,激光功率一直保持在美国国家标准学会的最大皮肤暴露极限以下。

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