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Noninvasive absolute cerebral oximetry with frequency-domain near-infrared spectroscopy.

机译:频域近红外光谱技术进行无创绝对脑血氧饱和度测定。

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摘要

Near-infrared spectroscopy (NIRS) measurements of absolute concentrations of oxy-hemoglobin and deoxy-hemoglobin in the human brain can provide critical information about cerebral physiology in terms of cerebral blood volume, blood flow, oxygen delivery, and metabolic rate of oxygen. We developed several frequency domain NIRS data acquisition and analysis methods aimed at absolute measurements of hemoglobin concentration and saturation in cerebral tissue of adult human subjects.;Extensive experimental investigations were carried out in various homogenous and two-layered tissue-mimicking phantoms, and biological tissues. The advantages and limitations of commonly used homogenous models and inversion strategies were thoroughly investigated. Prior to human subjects, extensive studies were carried out in in vivo animal models. In rabbits, absolute hemoglobin oxygen desaturation was shown to depend strongly on surgically induced testicular torsion. Methods developed in this study were then adapted for measurements in the rat brain. Absolute values were demonstrated to discern cerebrovascular impairment in a rat model of diet-induced vascular cognitive impairment. These results facilitated the development of clinically useful optical measures of cerebrovascular health. In a large group of human subjects, employing a homogeneous model for absolute measurements was shown to be reliable and robust. However, it was also shown to be limited due to the relatively thick extracerebral tissue.;The procedure we develop in this work and the thesis thereof performs a nonlinear inversion procedure with six unknown parameters with no other prior knowledge for the retrieval of the optical coefficients and top layer thickness with high accuracy on two-layered media. Our absolute measurements of cerebral hemoglobin concentration and saturation are based on the discrimination of extracerebral and cerebral tissue layers, and they can enhance the impact of NIRS for cerebral hemodynamics and oxygenation assessment both in the research arena and clinical practice.
机译:近红外光谱(NIRS)测量人脑中氧合血红蛋白和脱氧血红蛋白的绝对浓度可以提供有关脑生理,脑血流量,血流量,氧输送和氧代谢率的重要信息。我们开发了几种频域NIRS数据采集和分析方法,旨在绝对测量成年受试者大脑组织中血红蛋白的浓度和饱和度;在各种均质和两层组织模拟体模以及生物组织中进行了广泛的实验研究。彻底研究了常用同质模型和反演策略的优缺点。在人类受试者之前,在体内动物模型中进行了广泛的研究。在兔子中,血红蛋白的绝对氧饱和度强烈依赖于手术引起的睾丸扭转。然后将这项研究中开发的方法用于大鼠大脑的测量。在饮食诱发的血管性认知障碍的大鼠模型中,证明了绝对值可识别脑血管损害。这些结果促进了脑血管健康的临床上有用的光学测量方法的发展。在一大批人类受试者中,采用均质模型进行绝对测量被证明是可靠且可靠的。然而,由于脑外组织相对较厚,它也显示出局限性。我们在这项工作中开发的程序及其论文执行了具有六个未知参数的非线性反演程序,而没有其他先验知识来获取光学系数和两层介质上的顶层厚度具有高精度。我们对脑血红蛋白浓度和饱和度的绝对测量基于对脑外和脑组织层的区分,它们可以增强NIRS在研究领域和临床实践中对脑血流动力学和氧合评估的影响。

著录项

  • 作者

    Hallacoglu, Bertan.;

  • 作者单位

    Tufts University.;

  • 授予单位 Tufts University.;
  • 学科 Engineering Biomedical.;Physics Optics.;Health Sciences Radiology.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 146 p.
  • 总页数 146
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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