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Monitoring changes in hemodynamics following optogenetic stimulation.

机译:监测光遗传刺激后的血液动力学变化。

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摘要

The brain is composed of billions of neurons, all of which connected through a vast network. After years of study and applications of different technologies and techniques, there are still more questions than answers when it comes to the fundamental functions of the brain. This project aims to provide a new tool which can be used to gain a better understanding of the fundamental mechanisms that govern neurological processes inside the brain. In order for neural networks to operate, blood has to be supplied through neighboring blood vessels. As such, the increase or decrease in the blood supply has been used as an indicator of neural activity. The neural activity and blood supply relationship is known as neural vasculature coupling. Monitoring the hemodynamics is used as an indicator of neurological activity, but the causal relationship is an area of current research.;Gaining a better understanding of the coupling of neural activity and the surrounding vasculature provides a more accurate methodology to evaluate regional neural activity. The new optical technology applied in this project provides a set of tools to both stimulate and monitor this coupling relationship. Optogenetics provides the capability of stimulating neural activity using specific wavelengths of light. Essentially this tool allows for the direct stimulation of networks of neurons by simply shining one color of light onto the brain. Optical Coherence Tomography (OCT), another new optical technology applied in this project, can record volumetric images of blood vessels and flow using only infrared light. The combination of the two optical technologies is then capable of stimulating neural activity and monitoring the hemodynamic response inside the brain using only light.;As a result of this project we have successfully demonstrated the capability of both stimulating and imaging the brain using new optical technologies. The optical stimulation of neural activity has evoked a direct hemodynamic effect as anticipated through neural-vasculature coupling. Changes in blood velocity, flow and dilatation were all recorded using the high resolution and high speed capabilities of the OCT system.
机译:大脑由数十亿个神经元组成,所有神经元都通过一个庞大的网络相连。经过多年的研究和各种技术的应用,关于大脑的基本功能,问题多于答案。该项目旨在提供一种新工具,可用于更好地了解控制大脑内部神经过程的基本机制。为了使神经网络运行,必须通过邻近的血管供应血液。这样,血液供应的增加或减少已被用作神经活动的指标。神经活动和血液供应的关系被称为神经脉管系统耦合。监测血流动力学被用作神经活动的指标,但是因果关系是当前研究的一个领域。对神经活动与周围脉管系统的耦合有了更好的了解,为评估区域神经活动提供了更准确的方法。该项目中应用的新光学技术提供了一组工具来激发和监视这种耦合关系。光遗传学提供使用特定波长的光刺激神经活动的能力。本质上,该工具可以通过简单地将一种颜色的光照射到大脑上来直接刺激神经元网络。光学相干断层扫描(OCT)是此项目中应用的另一种新光学技术,仅使用红外光就可以记录血管和血流的体积图像。然后将这两种光学技术相结合就可以刺激神经活动并仅使用光来监测大脑内部的血液动力学响应。 。如通过神经-脉管系统的耦合所预期的那样,神经活动的光学刺激引起了直接的血液动力学作用。使用OCT系统的高分辨率和高速功能,记录了血流速度,流量和扩张的变化。

著录项

  • 作者

    Frye, Seth.;

  • 作者单位

    The University of Wisconsin - Milwaukee.;

  • 授予单位 The University of Wisconsin - Milwaukee.;
  • 学科 Engineering Electronics and Electrical.;Physics Optics.;Engineering Biomedical.
  • 学位 M.S.
  • 年度 2014
  • 页码 105 p.
  • 总页数 105
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:17

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