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Maximizing Negative Correlations in Resting-State Functional Connectivity MRI by Time-Lag

机译:通过时滞最大化静息状态功能连接MRI中的负相关性

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摘要

This paper aims to better understand the physiological meaning of negative correlations in resting state functional connectivity MRI (r-fcMRI). The correlations between anatomy-based brain regions of 18 healthy humans were calculated and analyzed with and without a correction for global signal and with and without spatial smoothing. In addition, correlations between anatomy-based brain regions of 18 naïve anesthetized rats were calculated and compared to the human data. T-statistics were used to differentiate between positive and negative connections. The application of spatial smoothing and global signal correction increased the number of significant positive connections but their effect on negative connections was complex. Positive connections were mainly observed between cortical structures while most negative connections were observed between cortical and non-cortical structures with almost no negative connections between non-cortical structures. In both human and rats, negative connections were never observed between bilateral homologous regions. The main difference between positive and negative connections in both the human and rat data was that positive connections became less significant with time-lags, while negative connections became more significant with time-lag. This effect was evident in all four types of analyses (with and without global signal correction and spatial smoothing) but was most significant in the analysis with no correction for the global signal. We hypothesize that the valence of r-fcMRI connectivity reflects the relative contributions of cerebral blood volume (CBV) and flow (CBF) to the BOLD signal and that these relative contributions are location-specific. If cerebral circulation is primarily regulated by CBF in one region and by CBV in another, a functional connection between these regions can manifest as an r-fcMRI negative and time-delayed correlation. Similarly, negative correlations could result from spatially inhomogeneous responses of rCBV or rCBF alone. Consequently, neuronal regulation of brain circulation may be deduced from the valence of r-fcMRI connectivity.
机译:本文旨在更好地了解静息状态功能连接MRI(r-fcMRI)中负相关的生理意义。计算和分析了18位健康人的基于解剖结构的大脑区域之间的相关性,无论是否校正了全局信号,以及是否进行了空间平滑。此外,还计算了18只初次麻醉的大鼠的基于解剖学的大脑区域之间的相关性,并将其与人类数据进行了比较。 T统计量用于区分正向和负向连接。空间平滑和全局信号校正的应用增加了显着的正连接的数量,但是它们对负连接的影响非常复杂。主要在皮质结构之间观察到正连接,而在皮质和非皮质结构之间观察到大多数负连接,而在非皮质结构之间几乎没有负连接。在人类和大鼠中,从未在双侧同源区域之间观察到负连接。在人类和大鼠数据中,正向和负向连接之间的主要区别在于,随着时间的推移,正向连接的重要性降低,而随着时间的流逝,负向的联系变得更加重要。在所有四种类型的分析中(带有和不带有全局信号校正和空间平滑),这种影响都是明显的,但是在不对全局信号进行校正的分析中,这种影响最为明显。我们假设r-fcMRI连接的价数反映了脑血容量(CBV)和血流(CBF)对BOLD信号的相对贡献,并且这些相对贡献是特定于位置的。如果一个区域的脑循环主要由CBF调节,而另一区域的脑循环主要由CBV调节,则这些区域之间的功能联系可以表现为r-fcMRI负相关和时延相关。同样,负相关可能是由单独的rCBV或rCBF的空间不均匀响应引起的。因此,可以从r-fcMRI连通性的效价推导大脑循环的神经元调节。

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  • 期刊名称 other
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  • 年(卷),期 -1(9),11
  • 年度 -1
  • 页码 e111554
  • 总页数 15
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