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高时空分辨率下小动物全身动力学的单脉冲全景光声计算机断层扫描

Single-impulse Panoramic Photoacoustic Computed Tomography of Small-animal Whole-body Dynamics at High Spatiotemporal Resolution.

作者信息

Li Lei, Zhu Liren, Ma Cheng, Lin Li, Yao Junjie, Wang Lidai, Maslov Konstantin, Zhang Ruiying, Chen Wanyi, Shi Junhui, Wang Lihong V

机构信息

Department of Electrical and Systems Engineering, Washington University in St. Louis, One Brookings Dr., St. Louis, MO, 63130.

Department of Medical Engineering, California Institute of Technology, 1200 E California Blvd., Pasadena, CA 91125.

出版信息

Nat Biomed Eng. 2017;1(5). doi: 10.1038/s41551-017-0071. Epub 2017 May 10.

Abstract

Imaging of small animals has played an indispensable role in preclinical research by providing high dimensional physiological, pathological, and phenotypic insights with clinical relevance. Yet pure optical imaging suffers from either shallow penetration (up to 1-2 mm) or a poor depth-to-resolution ratio (1/3), and non-optical techniques for whole-body imaging of small animals lack either spatiotemporal resolution or functional contrast. Here, we demonstrate that standalone single-impulse photoacoustic computed tomography (SIP-PACT) mitigates these limitations by combining high spatiotemporal resolution (125-µm in-plane resolution, 50 µs / frame data acquisition and 50-Hz frame rate), deep penetration (48-mm cross-sectional width ), anatomical, dynamical and functional contrasts, and full-view fidelity. By using SIP-PACT, we imaged whole-body dynamics of small animals in real time and obtained clear sub-organ anatomical and functional details. We tracked unlabeled circulating melanoma cells and imaged the vasculature and functional connectivity of whole rat brains. SIP-PACT holds great potential for both pre-clinical imaging and clinical translation.

摘要

小动物成像通过提供具有临床相关性的高维生理、病理和表型见解,在临床前研究中发挥了不可或缺的作用。然而,单纯的光学成像存在穿透深度浅(可达约1-2毫米)或深度分辨率比低(约为1/3)的问题,而用于小动物全身成像的非光学技术则缺乏时空分辨率或功能对比度。在此,我们证明独立单脉冲光声计算机断层扫描(SIP-PACT)通过结合高时空分辨率(平面分辨率为125微米,每帧数据采集时间为50微秒,帧率为50赫兹)、深度穿透(横截面宽度为48毫米)、解剖学、动力学和功能对比度以及全景保真度,减轻了这些限制。通过使用SIP-PACT,我们实时成像了小动物的全身动态,并获得了清晰的亚器官解剖和功能细节。我们追踪了未标记的循环黑色素瘤细胞,并对整个大鼠大脑的血管系统和功能连接进行了成像。SIP-PACT在临床前成像和临床转化方面都具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a2e/5766044/ffe62b0a054b/nihms864514f1.jpg

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