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在EPI荧光光学标测实验期间利用二维光信号开发一种成像方式。

Development of an imaging modality utilizing 2D optical signals during an EPI-fluorescent optical mapping experiment.

作者信息

Prior Phillip, Roth Bradley J

机构信息

Department of Physics, Oakland University, Rochester, MI 48309, USA.

出版信息

Phys Med Biol. 2009 May 21;54(10):3015-30. doi: 10.1088/0031-9155/54/10/004. Epub 2009 Apr 23.

Abstract

Optical mapping is a commonly used technique to visualize the electrical activity in the heart. Recently, several groups have attempted to use the signals acquired in optical mapping to image the transmembrane potential in the heart, which would be particularly advantageous when studying the effects of defibrillation-type shocks throughout the wall of the heart. Our work presents an alternative imaging method that makes use of data obtained using multiple wavelengths and therefore multiple optical decay constants. A modified form of the diffusion equation Green's function for a semi-infinite slab of tissue is derived and used to relate the detected optical signals to the source of emission photons. Images using the optical signals are reconstructed using Gaussian quadrature and matrix inversion. Our results show that images can be obtained for source terms located below the tissue surface. Furthermore, we demonstrate that our reconstruction method's susceptibility to noise can be alleviated using sophisticated matrix inverse techniques, such as singular value decomposition. Sources that rapidly decay with depth or are highly localized in the image plane require more sophisticated techniques (e.g., regularization methods) to image the electrical activity in the heart. The work presented here demonstrates the feasibility of a new imaging technique of cardiac electrical activity using optical mapping.

摘要

光学映射是一种常用的可视化心脏电活动的技术。最近,几个研究小组试图利用光学映射中获取的信号来成像心脏中的跨膜电位,这在研究除颤型电击对整个心脏壁的影响时将具有特别的优势。我们的工作提出了一种替代成像方法,该方法利用了使用多个波长从而具有多个光学衰减常数所获得的数据。推导了半无限大组织平板扩散方程格林函数的一种修正形式,并用于将检测到的光信号与发射光子源联系起来。使用高斯求积法和矩阵求逆法重建利用光信号的图像。我们的结果表明,可以获得位于组织表面下方的源项的图像。此外,我们证明,使用诸如奇异值分解等复杂的矩阵求逆技术,可以减轻我们的重建方法对噪声的敏感性。随深度迅速衰减或在图像平面中高度局部化的源需要更复杂的技术(例如正则化方法)来成像心脏中的电活动。此处介绍的工作证明了使用光学映射对心脏电活动进行新成像技术的可行性。

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