基于三参数标准通道空间光子测量密度函数的经颅脑图谱。

IF 4.7 2区 医学 Q1 NEUROIMAGING
Lijiang Wei , Yang Zhao , Farui Liu , Yuanyuan Chen , Yilong Xu , Zheng Li , Chaozhe Zhu
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引用次数: 0

摘要

功能近红外光谱(fNIRS)是一种广泛应用于神经科学研究的经颅脑成像技术。然而,缺乏记录的解剖信息给设计合适的光电蒙太奇和将fNIRS信号定位到潜在解剖区域带来了挑战。光子测量密度函数(PMDF)经常被用来解决这些问题,因为它精确地测量了fNIRS通道对大脑任何位置吸收系数扰动的灵敏度。然而,现有的基于pmdf的定位方法存在两个局限性:(1)通道空间有限;(2)基于单一标准头部模型的估计,通常与个体的解剖结构不同。为了克服这些限制,本研究提出了fNIRS的连续标准通道空间,并通过使用48名成年人的MRI数据计算pmdf,构建了基于pmdf的经颅脑图谱(PMDF-TBA)。PMDF-TBA包含3个图谱(Brodmann、AAL2和LPBA40)中定义的通道对灰质和脑区域的组平均灵敏度。我们评估PMDF-TBA对未见个体敏感性的预测能力。结果表明,它优于基于单一标准头部模型的pmdf,使PMDF-TBA成为更通用的fNIRS空间定位工具。因此,在缺乏单个sMRI数据的情况下,PMDF-TBA可以优化光电蒙太奇设计,增强目标脑区的通道灵敏度,并协助fNIRS数据的源定位,从而促进fNIRS在神经科学研究中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transcranial brain atlas based on photon measurement density function in a triple-parameter standard channel space
Functional near-infrared spectroscopy (fNIRS) is a widely-used transcranial brain imaging technique in neuroscience research. Nevertheless, the lack of anatomical information from recordings poses challenges for designing appropriate optode montages and for localizing fNIRS signals to underlying anatomical regions. The photon measurement density function (PMDF) is often employed to address these issues, as it accurately measures the sensitivity of an fNIRS channel to perturbations of absorption coefficients at any brain location. However, existing PMDF-based localization methods have two limitations: (1) limited channel space, and (2) estimation based on a single standard head model, which usually differ anatomically from individuals. To overcome these limitations, this study proposes a continuous standard channel space for fNIRS and constructs a PMDF-based transcranial brain atlas (PMDF-TBA) by calculating PMDFs using MRI data from 48 adults. The PMDF-TBA contains group-averaged sensitivities of channels to gray matter and brain regions as defined in 3 atlases: Brodmann, AAL2, and LPBA40. We evaluated the prediction ability of PMDF-TBA for sensitivity of unseen individuals. The results show that it outperformed PMDFs based on single standard head models, making PMDF-TBA a more generalizable fNIRS spatial localization tool. Therefore, in the absence of individual sMRI data, PMDF-TBA can optimize optode montage design, enhance channel sensitivity in target brain regions, and assist in source localization for fNIRS data, thereby facilitating the application of fNIRS in neuroscience research.
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来源期刊
NeuroImage
NeuroImage 医学-核医学
CiteScore
11.30
自引率
10.50%
发文量
809
审稿时长
63 days
期刊介绍: NeuroImage, a Journal of Brain Function provides a vehicle for communicating important advances in acquiring, analyzing, and modelling neuroimaging data and in applying these techniques to the study of structure-function and brain-behavior relationships. Though the emphasis is on the macroscopic level of human brain organization, meso-and microscopic neuroimaging across all species will be considered if informative for understanding the aforementioned relationships.
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