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用于疾病分析与诊断的荧光、超声和光声成像。

Fluorescence, ultrasonic and photoacoustic imaging for analysis and diagnosis of diseases.

作者信息

Chu Binbin, Chen Zhiming, Shi Haoliang, Wu Xiaofeng, Wang Houyu, Dong Fenglin, He Yao

机构信息

Suzhou Key Laboratory of Nanotechnology and Biomedicine, Institute of Functional Nano and Soft Materials (FUNSOM), Soochow University, Suzhou, Jiangsu 215123, China.

Department of Ultrasound, The First Affiliated Hospital of Soochow University, Suzhou, Jiangsu 215006, China.

出版信息

Chem Commun (Camb). 2023 Feb 23;59(17):2399-2412. doi: 10.1039/d2cc06654h.

Abstract

Biomedical imaging technology, which allows us to peer deeply within living subjects and visually explore the delivery and distribution of agents in living things, is producing tremendous opportunities for the early diagnosis and precise therapy of diseases. In this feature article, based on reviewing the latest representative examples of progress together with our recent efforts in the bioimaging field, we intend to introduce three typical kinds of non-invasive imaging technologies, , fluorescence, ultrasonic and photoacoustic imaging, in which optical and/or acoustic signals are employed for analyzing various diseases. In particular, fluorescence imaging possesses a series of outstanding advantages, such as high temporal resolution, as well as rapid and sensitive feedback. Hence, in the first section, we will introduce the latest studies on developing novel fluorescence imaging methods for imaging bacterial infections, cancer and lymph node metastasis in a long-term and real-time manner. However, the issues of imaging penetration depth induced by photon scattering and light attenuation of biological tissue limit their widespread imaging applications. Taking advantage of the excellect penetration depth of acoustic signals, ultrasonic imaging has been widely applied for determining the location, size and shape of organs, identifying normal and abnormal tissues, as well as confirming the edges of lesions in hospitals. Thus, in the second section, we will briefly summarize recent advances in ultrasonic imaging techniques for diagnosing diseases in deep tissues. Nevertheless, the absence of lesion targeting and dependency on a professional technician may lead to the possibility of false-positive diagnosis. By combining the merits of both optical and acoustic signals, newly-developed photoacoustic imaging, simultaneously featuring higher temporal and spatial resolution with good sensitivity, as well as deeper penetration depth, is discussed in the third secretion. In the final part, we further discuss the major challenges and prospects for developing imaging technology for accurate disease diagnosis. We believe that these non-invasive imaging technologies will introduce a new perspective for the precise diagnosis of various diseases in the future.

摘要

生物医学成像技术使我们能够深入观察活体内部,并直观地探索生物体内药物的递送和分布情况,为疾病的早期诊断和精准治疗带来了巨大机遇。在这篇专题文章中,我们在回顾最新代表性进展实例以及我们在生物成像领域近期工作的基础上,打算介绍三种典型的非侵入性成像技术,即荧光成像、超声成像和光声成像,这些技术利用光学和/或声学信号来分析各种疾病。特别是,荧光成像具有一系列突出优势,如高时间分辨率以及快速灵敏的反馈。因此,在第一部分,我们将介绍关于开发新型荧光成像方法以长期实时成像细菌感染、癌症和淋巴结转移的最新研究。然而,生物组织的光子散射和光衰减所导致的成像穿透深度问题限制了它们的广泛成像应用。利用声学信号出色的穿透深度,超声成像已在医院广泛应用于确定器官的位置、大小和形状,识别正常和异常组织,以及确认病变的边缘。因此,在第二部分,我们将简要总结超声成像技术在诊断深部组织疾病方面的最新进展。尽管如此,缺乏病变靶向性以及对专业技术人员的依赖可能导致假阳性诊断的可能性。通过结合光学和声学信号的优点,新开发的光声成像在第三部分进行讨论,它同时具有较高的时间和空间分辨率、良好的灵敏度以及更深的穿透深度。在最后一部分,我们进一步讨论开发用于准确疾病诊断的成像技术的主要挑战和前景。我们相信,这些非侵入性成像技术将为未来各种疾病的精准诊断带来新的视角。

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