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利用新型光声三维成像系统在小动物体内进行无标记的肿瘤相关血管观察。

In Vivo Label-Free Observation of Tumor-Related Blood Vessels in Small Animals Using a Newly Designed Photoacoustic 3D Imaging System.

机构信息

Luxonus Inc., Kawasaki, Kanagawa, Japan.

Tokyo Institute of Technology, Yokohama, Kanagawa, Japan.

出版信息

Ultrason Imaging. 2022 May;44(2-3):96-104. doi: 10.1177/01617346221099201. Epub 2022 May 13.

Abstract

Photoacoustic (PA) technology can be used for non-invasive imaging of blood vessels. In this paper, we report on our prototype PA imaging system with a newly designed ultrasound sensor and its visualization performance of microvascular in animal. We fabricated an experimental system for animals using a high-frequency sensor. The system has two modes: still image mode by wide scanning and moving image mode by small rotation of sensor array. Optical test target, euthanized mice and rats, and live mice were used as objects. The results of optical test target showed that the spatial resolution was about two times higher than that of our conventional prototype. The image performance in vivo was evaluated in euthanized healthy mice and rats, allowing visualization of detailed blood vessels in the liver and kidneys. In tumor-bearing mice, different results of vascular induction were shown depending on the type of tumor and the method of transplantation. By utilizing the video imaging function, we were able to observe the movement of blood vessels around the tumor. We have demonstrated the feasibility of the system as a less invasive animal experimental device, as it can acquire vascular images in animals in a non-contrast and non-invasive manner.

摘要

光声(PA)技术可用于血管的非侵入性成像。本文报道了我们具有新型超声传感器的原型 PA 成像系统及其在动物微血管可视化方面的性能。我们使用高频传感器为动物制造了一个实验系统。该系统有两种模式:通过宽扫描的静态图像模式和通过传感器阵列小旋转的动态图像模式。光学测试目标、安乐死的小鼠和大鼠以及活体小鼠被用作对象。光学测试目标的结果表明,空间分辨率比我们的传统原型高约两倍。在安乐死的健康小鼠和大鼠中评估了体内的图像性能,能够可视化肝脏和肾脏中的详细血管。在荷瘤小鼠中,根据肿瘤类型和移植方法,显示出不同的血管诱导结果。通过利用视频成像功能,我们能够观察到肿瘤周围血管的运动。我们已经证明了该系统作为一种微创动物实验设备的可行性,因为它可以非对比且非侵入性地获取动物的血管图像。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c50/9207988/de1c5156f30c/10.1177_01617346221099201-fig1.jpg

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