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Development and Validation of a Biologically Realistic Tissue-Mimicking Material for Photoacoustics and Other Bimodal Optical-Acoustic Modalities

机译:用于光声和其他双峰光声模态的生物现实组织模仿材料的开发和验证。

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摘要

Recent years have seen rapid development of hybrid optical-acoustic imaging modalities with broad applications in research and clinical imaging, including photoacoustic tomography (PAT), photoacoustic microscopy, and ultrasound-modulated optical tomography. Tissue-mimicking phantoms are an important tool for objectively and quantitatively simulating in vivo imaging system performance. However, no standard tissue phantoms exist for such systems. One major challenge is the development of tissue-mimicking materials (TMMs) that are both highly stable and possess biologically realistic properties. To address this need, we have explored the use of various formulations of PVC plastisol (PVCP) based on varying mixtures of several liquid plasticizers. We developed a custom PVCP formulation with optical absorption and scattering coefficients, speed of sound, and acoustic attenuation that are tunable and tissue-relevant. This TMM can simulate different tissue compositions and offers greater mechanical strength than hydrogels. Optical properties of PVCP samples with varying composition were characterized using integrating sphere spectrophotometry and the inverse adding-doubling method. Acoustic properties were determined using a broadband pulse-transmission technique. To demonstrate the utility of this bimodal TMM, we constructed an image quality phantom designed to enable quantitative evaluation of PAT spatial resolution. The phantom was imaged using a custom combined PAT-ultrasound imaging system. Results indicated that this more biologically realistic TMM produced performance trends not captured in simpler liquid phantoms. In the future, this TMM may be broadly utilized for performance evaluation of optical, acoustic, and hybrid optical-acoustic imaging systems.
机译:近年来,混合光声成像技术迅速发展,在研究和临床成像中具有广泛的应用,包括光声层析成像(PAT),光声显微术和超声调制光学层析成像。模仿组织的体模是客观和定量地模拟体内成像系统性能的重要工具。但是,此类系统不存在标准的组织模型。一项主要挑战是开发高度稳定且具有生物学现实特性的组织模仿材料(TMM)。为了满足这一需求,我们探索了基于几种液体增塑剂不同混合物的PVC增塑溶胶(PVCP)各种配方的使用。我们开发了一种定制的PVCP配方,该配方具有可调节的和与组织相关的光吸收和散射系数,声速和声衰减。这种TMM可以模拟不同的组织成分,并且比水凝胶具有更高的机械强度。用积分球分光光度法和反加倍法表征了组成不同的PVCP样品的光学性能。使用宽带脉冲传输技术确定声学特性。为了演示此双峰TMM的实用性,我们构建了图像质量模型,旨在对PAT空间分辨率进行定量评估。使用定制的组合PAT-超声成像系统对体模成像。结果表明,这种生物学上更现实的TMM产生了在较简单的液体体模中无法捕获的性能趋势。将来,该TMM可以广泛用于光学,声学和混合光学声学成像系统的性能评估。

著录项

  • 来源
    《Design and quality for biomedical technologies X》|2017年|100560C.1-100560C.7|共7页
  • 会议地点 San Francisco(US)
  • 作者单位

    Center for Devices and Radiological Health, U.S. Food and Drug Administration 10903 New Hampshire Avenue, Silver Spring, MD USA 20993;

    Center for Devices and Radiological Health, U.S. Food and Drug Administration 10903 New Hampshire Avenue, Silver Spring, MD USA 20993;

    Center for Devices and Radiological Health, U.S. Food and Drug Administration 10903 New Hampshire Avenue, Silver Spring, MD USA 20993;

    Center for Devices and Radiological Health, U.S. Food and Drug Administration 10903 New Hampshire Avenue, Silver Spring, MD USA 20993;

    Center for Devices and Radiological Health, U.S. Food and Drug Administration 10903 New Hampshire Avenue, Silver Spring, MD USA 20993;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    tissue phantom; tissue-mimicking material; standards; photoacoustic tomography; ultrasound;

    机译:组织体模模拟组织的材料标准;光声层析成像超音波;

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