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配备激光光源的缺氧成像内窥镜检查,从临床前活体动物研究到首例人体受试者研究。

Hypoxia imaging endoscopy equipped with laser light source from preclinical live animal study to first-in-human subject research.

作者信息

Kaneko Kazuhiro, Yamaguchi Hiroshi, Saito Takaaki, Yano Tomonori, Oono Yasuhiro, Ikematsu Hiroaki, Nomura Shogo, Sato Akihiro, Kojima Motohiro, Esumi Hiroyasu, Ochiai Atsushi

机构信息

Department of Gastroenterology, Endoscopy Division, National Cancer Center Hospital East, Kashiwa, Chiba, Japan; Division of Science and Technology for Endoscopy and Surgery, National Cancer Center Hospital East, Kashiwa, Chiba, Japan.

Imaging Technology Center, FUJIFILM Corporation, Kaisei, Kanagawa, Japan.

出版信息

PLoS One. 2014 Jun 10;9(6):e99055. doi: 10.1371/journal.pone.0099055. eCollection 2014.

Abstract

A goal in next-generation endoscopy is to develop functional imaging techniques to open up new opportunities for cancer diagnosis. Although spatial and temporal information on hypoxia is crucial for understanding cancer physiology and expected to be useful for cancer diagnosis, existing techniques using fluorescent indicators have limitations due to low spatial resolution and invasive administration. To overcome these problems, we developed an imaging technology based on hemoglobin oxygen saturation in both the tumor and surrounding mucosa using a laser endoscope system, and conducted the first human subject research for patients with aero-digestive tract cancer. The oxygen saturation map overlapped the images of cancerous lesions and indicated highly heterogeneous features of oxygen supply in the tumor. The hypoxic region of the tumor surface was found in both early cancer and cancer precursors. This technology illustrates a novel aspect of cancer biology as a potential biomarker and can be widely utilized in cancer diagnosis.

摘要

下一代内窥镜检查的一个目标是开发功能成像技术,为癌症诊断开辟新的机会。尽管缺氧的空间和时间信息对于理解癌症生理学至关重要,并且有望用于癌症诊断,但现有的使用荧光指示剂的技术由于空间分辨率低和侵入性给药而存在局限性。为了克服这些问题,我们开发了一种基于肿瘤和周围黏膜中血红蛋白氧饱和度的成像技术,使用激光内窥镜系统,并对气消化道癌症患者进行了首次人体研究。氧饱和度图与癌性病变图像重叠,显示出肿瘤中氧供应的高度异质性特征。在早期癌症和癌前病变中均发现了肿瘤表面的缺氧区域。这项技术阐明了癌症生物学作为一种潜在生物标志物的新方面,并可广泛应用于癌症诊断。

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