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体内单细胞无标记光声血流成像。

Single-cell label-free photoacoustic flowoxigraphy in vivo.

机构信息

Optical Imaging Laboratory, Department of Biomedical Engineering, Washington University in St. Louis, St. Louis, MO 63130, USA.

出版信息

Proc Natl Acad Sci U S A. 2013 Apr 9;110(15):5759-64. doi: 10.1073/pnas.1215578110. Epub 2013 Mar 27.

Abstract

Label-free functional imaging of single red blood cells (RBCs) in vivo holds the key to uncovering the fundamental mechanism of oxygen metabolism in cells. To this end, we developed single-RBC photoacoustic flowoxigraphy (FOG), which can image oxygen delivery from single flowing RBCs in vivo with millisecond-scale temporal resolution and micrometer-scale spatial resolution. Using intrinsic optical absorption contrast from oxyhemoglobin (HbO2) and deoxyhemoglobin (HbR), FOG allows label-free imaging. Multiple single-RBC functional parameters, including total hemoglobin concentration (C(Hb)), oxygen saturation (sO2), sO2 gradient (VsO2), flow speed (v(f)), and oxygen release rate (rO2), have been quantified simultaneously in real time. Working in reflection instead of transmission mode, the system allows minimally invasive imaging at more anatomical sites. We showed the capability to measure relationships among sO2, VsO2, v(f), and rO2 in a living mouse brain. We also demonstrated that single-RBC oxygen delivery was modulated by changing either the inhalation gas or blood glucose. Furthermore, we showed that the coupling between neural activity and oxygen delivery could be imaged at the single-RBC level in the brain. The single-RBC functional imaging capability of FOG enables numerous biomedical studies and clinical applications.

摘要

无标记功能成像的单个红细胞(RBC)在体内拥有的关键是揭示细胞内氧代谢的基本机制。为此,我们开发了单 RBC 光声血流成像(FOG),它可以在体内以毫秒级的时间分辨率和微米级的空间分辨率对单个流动 RBC 的氧输送进行成像。FOG 利用氧合血红蛋白(HbO2)和脱氧血红蛋白(HbR)的固有光学吸收对比度,可以进行无标记成像。多种单个 RBC 功能参数,包括总血红蛋白浓度(C(Hb))、氧饱和度(sO2)、sO2 梯度(VsO2)、流速(v(f))和氧释放率(rO2),已经被实时定量。该系统以反射而不是透射模式工作,允许在更多解剖部位进行微创成像。我们证明了在活体小鼠大脑中测量 sO2、VsO2、v(f)和 rO2 之间关系的能力。我们还证明了通过改变吸入气体或血糖水平可以调节单个 RBC 的氧输送。此外,我们表明可以在大脑的单个 RBC 水平上对神经活动和氧输送之间的耦合进行成像。FOG 的单个 RBC 功能成像能力使许多生物医学研究和临床应用成为可能。

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