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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Quantitative Determination of Local Density of Iron Oxide Nanoparticles Used for Drug Targeting Employing Inverse Magnetomotive Ultrasound
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Quantitative Determination of Local Density of Iron Oxide Nanoparticles Used for Drug Targeting Employing Inverse Magnetomotive Ultrasound

机译:用于药物靶向逆磁力超声的药物靶向氧化铁纳米粒子局部密度的定量测定

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摘要

Numerous medical applications make use of magnetic nanoparticles, which increase the demand for imaging procedures that are capable of visualizing this kind of particle. Magnetomotive ultrasound (MMUS) is an ultrasound-based imaging modality that can detect tissue, which is permeated by magnetic nanoparticles. However, currently, MMUS can only provide a qualitative mapping of the particle density in the particle-loaded tissue. In this contribution, we present an enhanced MMUS procedure, which enables an estimation of the quantitative level of the local nanoparticle concentration in tissue. The introduced modality involves an adjustment of simulated data to measurement data. To generate these simulated data, the physical processes that arise during the MMUS imaging procedure have to be emulated which can be a computing-intensive proceeding. Since this considerable calculation effort may handicap clinical applications, we further present an efficient approach to calculate the decisive physical quantities and a suitable way to adjust these simulated quantities to the measurement data with only moderate computational effort. For this purpose, we use the result data of a conventional MMUS measurement and the knowledge on the magnetic field quantities and on the mechanical parameters describing the biological tissue, namely, the density, the longitudinal wave velocity, and the shear wave velocity. Experiments on tissue-mimicking phantoms demonstrate that the presented technique can indeed be utilized to determine the local nanoparticle concentration in tissue quantitatively in the correct order of magnitude. By investigating test phantoms of simple geometry, the mean particle concentration of the particle-laden area could be determined with less than 22% deviation to the nominal value.
机译:许多医学应用利用磁性纳米颗粒,这增加了对能够可视化这种颗粒的成像程序的需求。磁力素超声(MMUS)是一种超声的成像模态,其可以检测由磁性纳米颗粒渗透的组织。然而,目前,MMU可以仅提供颗粒加载的组织中的粒子密度的定性映射。在这种贡献中,我们提出了一种增强的MMUS程序,其能够估计组织中局部纳米颗粒浓度的定量水平。引入的模态涉及将模拟数据调整到测量数据。为了生成这些模拟数据,必须仿真在MMUS成像过程期间出现的物理过程,其可以是计算密集型程序。由于这种相当大的计算工作可以障碍临床应用,我们进一步提出了一种有效的方法来计算决定性的物理量和适当的方法,以通过中等计算工作来调整这些模拟量的测量数据。为此目的,我们使用传统MMUS测量的结果数据和磁场量的知识以及描述生物组织的机械参数,即密度,纵向波速度和剪切波速度。组织模拟验光的实验表明,所呈现的技术确实用于定量以正确的数量级定量地确定组织中的局部纳米颗粒浓度。通过研究简单几何形状的测试素,可以用小于22%的偏差确定粒子叠层区域的平均颗粒浓度。

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