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基于电荷耦合器件的临床前温度调制荧光断层扫描平台的开发。

Development of a preclinical CCD-based temperature modulated fluorescence tomography platform.

作者信息

Nouizi Farouk, Erkol Hakan, Nikkhah Deniz, Kwong Tiffany C, Gulsen Gultekin

机构信息

Tu and Yuen Center for Functional Onco-Imaging, Department of Radiological Sciences, University of California Irvine, CA 92697, USA.

Chao Family Comprehensive Cancer Center, University of California Irvine, CA 92697, USA.

出版信息

Biomed Opt Express. 2022 Oct 12;13(11):5740-5752. doi: 10.1364/BOE.470723. eCollection 2022 Nov 1.

Abstract

In preclinical research, fluorescence molecular tomography (FMT) is the most sensitive imaging modality to interrogate whole-body and provide 3D distribution of fluorescent contract agents. Despite its superior sensitivity, its mediocre spatial-resolution has been the main barrier to its clinical translation. This limitation is mainly due to the high scattering of optical photons in biological tissue together with the limited boundary measurements that lead to an undetermined and ill-posed inverse problem. To overcome the limitations of FMT, we previously introduced a novel method termed, Temperature Modulated Fluorescence Tomography (TMFT). TMFT utilizes thermos-sensitive fluorescent agents (ThermoDots) as a key component and localizes them with high-intensity focused ultrasound (HIFU). Scanning the focused HIFU beam having a diameter Ø = 1.3 mm across the tissue while monitoring the variation in the measured fluorescence signals reveals the position of the ThermoDots with high spatial accuracy. We have formerly built a prototype TMFT system that uses optical fibers for detection. In this paper, we present an upgraded version using a CCD camera-based detection that enables non-contact imaging. In this version, the animal under investigation is placed on an ultrasound transparent membrane, which eliminates the need for its immersion in optical matching fluids that were required by the fiber-based system. This CCD-based system will pave the way for convenient and wide-spread use of TMFT in preclinical research. Its performance validation on phantom studies demonstrates that high spatial-resolution (∼1.3 mm) and quantitative accuracy in recovered fluorophore concentration (<3% error) can be achieved.

摘要

在临床前研究中,荧光分子断层扫描(FMT)是用于检测全身并提供荧光造影剂三维分布的最灵敏成像方式。尽管其灵敏度卓越,但其中等的空间分辨率一直是其临床转化的主要障碍。这一限制主要归因于生物组织中光光子的高散射,以及有限的边界测量,这导致了一个不确定且不适定的逆问题。为克服FMT的局限性,我们之前引入了一种名为温度调制荧光断层扫描(TMFT)的新方法。TMFT利用热敏荧光剂(ThermoDots)作为关键组件,并通过高强度聚焦超声(HIFU)对其进行定位。在监测测量的荧光信号变化的同时,在组织上扫描直径Ø = 1.3毫米的聚焦HIFU光束,可高精度地确定ThermoDots的位置。我们之前构建了一个使用光纤进行检测的TMFT原型系统。在本文中,我们展示了一个基于CCD相机检测的升级版,该版本实现了非接触成像。在此版本中,被研究的动物放置在超声透明膜上,这消除了将其浸入基于光纤的系统所需的光学匹配液中的需求。这种基于CCD的系统将为TMFT在临床前研究中的便捷广泛应用铺平道路。其在体模研究中的性能验证表明,可实现高空间分辨率(约1.3毫米)和恢复荧光团浓度的定量准确性(误差<3%)。

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