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在啮齿动物背部窗口室中进行血流和血红蛋白氧饱和度的宽场功能成像。

Wide-field functional imaging of blood flow and hemoglobin oxygen saturation in the rodent dorsal window chamber.

机构信息

Beckman Laser Institute, University of California, Irvine, 1002 Health Sciences Road East, Irvine, CA 92612, USA.

出版信息

Microvasc Res. 2011 Nov;82(3):199-209. doi: 10.1016/j.mvr.2011.07.004. Epub 2011 Jul 23.

Abstract

The rodent dorsal window chamber is a widely used in vivo model of the microvasculature. The model consists of a 1cm region of exposed microvasculature in the rodent dorsal skin that is immobilized by surgically implanted titanium frames, allowing the skin microvasculature to be visualized. We describe a detailed protocol for surgical implantation of the dorsal window chamber which enables researchers to perform the window chamber implantation surgery. We further describe subsequent wide-field functional imaging of the chamber to obtain hemodynamic information in the form of blood oxygenation and blood flow on a cm size region of interest. Optical imaging techniques, such as intravital microscopy, have been applied extensively to the dorsal window chamber to study microvascular-related disease and conditions. Due to the limited field of view of intravital microscopy, detailed hemodynamic information typically is acquired from small regions of interest, typically on the order of hundreds of μm. The wide-field imaging techniques described herein complement intravital microscopy, allowing researchers to obtain hemodynamic information at both microscopic and macroscopic spatial scales. Compared with intravital microscopy, wide-field functional imaging requires simple instrumentation, is inexpensive, and can give detailed metabolic information over a wide field of view.

摘要

啮齿动物背部窗口室是一种广泛应用于血管系统的活体模型。该模型由啮齿动物背部皮肤中暴露的 1 厘米微脉管区域组成,通过手术植入的钛框架固定,使皮肤微脉管可视化。我们描述了一种详细的背部窗口室手术植入方案,使研究人员能够进行窗口室植入手术。我们进一步描述了随后对窗口室的宽场功能成像,以获得以感兴趣的厘米大小区域的血氧和血流形式的血液动力学信息。活体显微镜等光学成像技术已广泛应用于背部窗口室,以研究与微血管相关的疾病和情况。由于活体显微镜的视场有限,通常只能从小的感兴趣区域获取详细的血液动力学信息,通常在数百微米的量级。本文所述的宽场成像技术补充了活体显微镜,使研究人员能够在微观和宏观空间尺度上获得血液动力学信息。与活体显微镜相比,宽场功能成像需要简单的仪器,成本低廉,并且可以在宽视场中提供详细的代谢信息。

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