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Radiofrequency Circuit Design and Performance Evaluation for Small Animal Frequency-Domain NIR Fluorescence Optical Tomography

机译:小动物频域近红外荧光光学层析成像的射频电路设计和性能评估

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摘要

Herein we report on hardware development and evaluation for frequency-domain photon migration (FDPM) technique that is miniaturized for incorporation into a micro-CT gantry for hybrid CT/NIR/PET imaging. Immunity to endogenous optical properties and enhanced contrast associated with fluorophore lifetime is inherent to the FDPM measurements and enables unique opportunities for quantitative tomography when compared to the time independent (continuous wave) approach. A miniaturized radiofrequency (rf) circuitry has been developed in our laboratory for homodyne FDPM measurements that makes use of a single 100MHz oscillator to simultaneously launch optically modulated excitation light into a small animal as well as to modulate an NIR sensitive image intensifier for collection of fluorescent signals. The use of a single oscillator not only eliminates signal drift that otherwise results from the use of multiple oscillators individually driving both source and detector, but also reduces the circuit footprint for incorporation into the CT gantry. Herein, overall system performance parameters of signal-to-noise ratio, measurement precision, spatial resolution, modulation depth (ac/dc), excitation light rejection, and clinically relevant data acquisition times are presented for mouse phantom data. Image reconstruction of phantom data and integration of circuitry for hybrid CT/NIR/PET imaging is also presented towards the ultimate validation of NIR optical tomography using PET imaging as a "gold-standard" for quantification.
机译:在这里,我们报告了针对频域光子迁移(FDPM)技术的硬件开发和评估,该技术已微小型化,可并入用于混合CT / NIR / PET成像的微型CT机架中。 FDPM测量固有的抗内源光学性能和增强的对比度的特性是FDPM测量的固有特性,与时间无关(连续波)方法相比,它为定量层析成像提供了独特的机会。我们实验室已开发出一种用于零差FDPM测量的小型射频(rf)电路,该电路利用单个100MHz振荡器同时向小动物发射光调制的激发光,并调制NIR敏感图像增强器以收集荧光信号。使用单个振荡器不仅可以消除因单独使用多个振荡器驱动信号源和检测器而导致的信号漂移,而且还可以减少合并到CT机架中的电路面积。在此,提出了小鼠幻象数据的整体系统性能参数,包括信噪比,测量精度,空间分辨率,调制深度(ac / dc),激发光抑制和临床相关数据采集时间。还提出了幻影数据的图像重建以及用于CT / NIR / PET混合成像的电路集成,以最终验证以PET成像作为“金标准”进行定量的NIR光学层析成像。

著录项

  • 来源
    《Optical tomography and spectroscopy of tissue IX》|2011年|p.789621.1-789621.6|共6页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Center for Molecular Imaging, The Brown Foundation Institute of Molecular Medicine at the University of Texas Health Science Center at Houston, Houston, TX, USA;

    Center for Molecular Imaging, The Brown Foundation Institute of Molecular Medicine at the University of Texas Health Science Center at Houston, Houston, TX, USA;

    Center for Molecular Imaging, The Brown Foundation Institute of Molecular Medicine at the University of Texas Health Science Center at Houston, Houston, TX, USA;

    Center for Molecular Imaging, The Brown Foundation Institute of Molecular Medicine at the University of Texas Health Science Center at Houston, Houston, TX, USA;

    Center for Molecular Imaging, The Brown Foundation Institute of Molecular Medicine at the University of Texas Health Science Center at Houston, Houston, TX, USA;

    Center for Molecular Imaging, The Brown Foundation Institute of Molecular Medicine at the University of Texas Health Science Center at Houston, Houston, TX, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 医用物理学;
  • 关键词

    optical tomography; fluorescence; near infrared imaging; small animal imaging; frequency-domain photon migration; radiofrequency;

    机译:光学层析成像荧光近红外成像小动物成像;频域光子迁移无线电频率;

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