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Developing multifunctional tissue simulating phantoms for quantitative biomedical optical imaging

机译:开发多功能组织模拟定量定量生物医学光学成像

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Many advantages of biomedical optical imaging modalities include low cost, portability, no radiation hazard, molecular sensitivity, and real-time non-invasive measurements of multiple tissue parameters. However, clinical acceptance of optical imaging is hampered by the lack of calibration standards and validation techniques. In this context, developing phantoms that simulate tissue structural, functional, and molecular properties is important for reliable performance and successful translation of biomedical optical imaging techniques to clinical applications.Over the years, we have developed various tissue simulating phantoms to validate imaging algorithms, to optimize instrument performance, to test contrast agents, and to calibrate acquisition systems. We also developed phantoms with multimodal contrasts for co-registration between different imaging modalities. In order to study tissue dynamic changes during medical intervention, we develop gel wax phantoms to simulate tissue optical and mechanical dynamics in response to compression load. We also dispersed heat sensitive microbubbles in agar agar gel phantoms to simulate heatinduced tissue coagulative necrosis in a cancer ablation procedure. The phantom systems developed in our lab have the potential to provide standardized traceable tools for multimodal imaging and image-guided intervention.
机译:生物医学光学成像模式的许多优点包括低成本,可移植性,无辐射危害,分子敏感性和多种组织参数的实时非侵入性测量。然而,通过缺乏校准标准和验证技术阻碍了光学成像的临床接受。在这种情况下,培养模拟组织结构,功能和分子特性的幽灵对于可靠的性能和生物医学光学成像技术的可靠性和成功的临床应用。多年来,我们已经开发了各种组织模拟模拟幻像以验证成像算法,以优化仪器性能,以测试造影剂,并校准采集系统。我们还开发了具有多模式对比的幽灵,用于在不同的成像方式之间共同登记。为了在医疗干预过程中研究组织动态变化,我们开发凝胶蜡型致响应压缩负荷的组织光学和机械动力学。我们还分散在琼脂琼脂凝胶幽灵中的热敏微泡,以模拟癌症消融程序中的散热诱导组织凝固性坏死。我们实验室开发的幻影系统有可能提供标准化的可追踪工具,用于多模式成像和图像引导干预。

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