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Dual-source dual-detector optical probe for improved depth discrimination in functional near-infrared spectroscopy.

机译:双源双探测器光学探头,用于改善功能近红外光谱中的深度判别。

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摘要

Near infrared spectroscopy (NIRS) has been shown to be an effective functional brain imaging modality and to have potential of detecting cerebral activity noninvasively. By delivering light in the near-infrared range (600--900 nm) to a scalp location and detecting the optical intensities from another scalp location at a distance of 1--4 cm, we can determine the concentration changes of Oxy-hemoglobin and Deoxy-hemoglobin that are the signatures of evoked brain activity. Since functional brain imaging depends on hemodynamic trends that are specific to the cerebral cortex in the practical NIRS measurement, it is necessary to reduce the interference of hemodynamic trends in the intervening extracerebral tissue (scalp and skull mainly). A previous study has employed one single-source and dual-detector configuration geometry, including one "near" (≈ 1 cm) source-detector separation and one "far" (≈ 3--4 cm) source-detector separation, to remove contributions from the extracerebral tissue. A least squares method was used to fit the temporal trace of the "far" signal with a scaled "near" signal (the scaling factor being the fitting parameter) and the residual was considered as the signals originated in the brain. Our method is based on the same concept but we introduced a second additional source close to the far detector so that we could take into account the contributions from the superficial extracerebral tissue near both detectors. Therefore, in contrast to previous methods, we assumed the hemodynamic trends in the extracerebral tissue are not homogeneous or layer-like. With the proposed source-detector arrangement we studied the brain hemodynamics elicited during a finger tapping protocol, our findings confirm the assumption that hemodynamic changes occurring in the extracerebral tissue can be heterogeneous. Also, we observed that our method for depth discrimination leads to a residual which is representative of cortex-specific hemodynamic trends and our findings are in agreement with known physiological responses to neural activation. In conclusion, our results demonstrated that it is important to use a dual-source and dual-detector configuration geometry for improved depth discrimination of functional NIRS during brain imaging.
机译:近红外光谱(NIRS)已被证明是一种有效的功能性脑成像方式,具有无创检测脑活动的潜力。通过将近红外范围(600--900 nm)的光传输到头皮位置并检测另一头皮位置1--4 cm处的光强度,我们可以确定氧合血红蛋白和脱氧血红蛋白是诱发的大脑活动的特征。由于实用的脑成像取决于实用NIRS测量中特定于大脑皮层的血液动力学趋势,因此有必要减少介入大脑外组织(主要是头皮和颅骨)的血液动力学趋势的干扰。先前的研究采用了一种单源和双探测器配置几何形状,包括一种“近”(约1厘米)的源探测器间隔和一种“远”(约3--4厘米)的源探测器间隔,去除脑外组织的贡献。使用最小二乘法将“远”信号的时间轨迹与经过缩放的“近”信号(缩放因子为拟合参数)进行拟合,并且将残差视为源自大脑的信号。我们的方法基于相同的概念,但是我们在远检测器附近引入了第二个附加源,因此我们可以考虑两个检测器附近的浅表脑外组织的贡献。因此,与以前的方法相反,我们假设脑外组织的血流动力学趋势不是均匀的或层状的。通过提出的源-检测器布置,我们研究了在敲击手指过程中引起的大脑血流动力学,我们的发现证实了在脑外组织中发生的血流动力学变化可能是异质性的假设。此外,我们观察到我们的深度判别方法会导致残留,该残留代表了特定于皮层的血液动力学趋势,并且我们的发现与已知的神经激活生理反应相吻合。总之,我们的结果表明,在脑部成像过程中使用双源双探测器配置几何图形对于改善功能性NIRS的深度判别非常重要。

著录项

  • 作者

    Da, Xiao.;

  • 作者单位

    Tufts University.;

  • 授予单位 Tufts University.;
  • 学科 Engineering Biomedical.
  • 学位 M.S.
  • 年度 2010
  • 页码 78 p.
  • 总页数 78
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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