Application of Fourier Analysis of Cerebral Glucose Metabolism in Color-Induced Long-Term Potentiation: A Novel Functional PET Spectroscopy (fPETS) Study in Mice

P. Njemanze, Mathias Kranz, P. Brust
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Abstract

Fourier time-series analysis could be used to segregate changes in the ventral and dorsal streams of the visual system in male and female mice. Color memory processes of long-term potentiation and long-term depression could be identified through spectral analysis. We used small animal positron emission tomography and magnetic resonance imaging (PET/MRI) to measure the accumulation of [ 18 F] fluorodeoxyglucose ([ 18 F]FDG) in the mouse brain during light stimulation with blue and yellow filters compared to darkness condition. The mean standardized uptake values (SUV) of [ 18 F]FDG for each stimulus condition was analyzed using standard Fourier analysis software to derive spectral density estimates for each condition. Spectral peaks were identified as originating from the subcortical region (S-peak) by subcortical long-term potentiation (SLTP) or depression (SLTD), and originating from the cortical region (C-peak) by cortical long-term potentiation (CLTP) or depression (CLTD). Luminance opponency occurred at S-peak by SLTP in the dorsal stream in the left visual cortex in male mice. On the other hand, chromatic opponency occurred by wavelength-differencing at C-peak by CLTP in the cortico-subcortical pathways in the ventral stream in the left visual cortex in male mice. In contrast in female mice, during luminance processing, there was resonance phenomenon at C-peak in the ventral stream in the right visual cortex. Chromatic opponency occurred at S-peak by SLTP in the dorsal stream in the right visual cortex in female mice. Application of Fourier analysis improved spatial and temporal resolutions of conventional f PET/MRI methods. Computation of color processing as a conscious experience has wide range applications in neuroscience and artificial intelligence.
脑糖代谢傅立叶分析在色致长时程增强中的应用:一种新型功能PET光谱(fpet)研究
傅里叶时间序列分析可用于分离雄性和雌性小鼠视觉系统腹侧和背侧流的变化。通过光谱分析可以识别长时程增强和长时程抑制的颜色记忆过程。我们使用小动物正电子发射断层扫描和磁共振成像(PET/MRI)来测量在蓝色和黄色滤光片的光刺激下与黑暗条件下小鼠大脑中[18 F]氟脱氧葡萄糖([18 F]FDG)的积累。使用标准傅立叶分析软件分析每种刺激条件下[18 F]FDG的平均标准化摄取值(SUV),得出每种条件下的谱密度估计。光谱峰通过皮层下长期增强(SLTP)或抑郁(SLTD)来源于皮层下区域(s峰),通过皮层长期增强(CLTP)或抑郁(CLTD)来源于皮层区域(c峰)。雄性小鼠左视皮层背流SLTP在s峰发生亮度对抗。另一方面,雄性小鼠左侧视皮层腹侧流皮层-皮层下通路中CLTP通过c峰波长差异产生色差。而雌性小鼠在亮度处理过程中,右侧视皮层腹侧流c峰出现共振现象。雌性小鼠右侧视皮层背流的SLTP在s峰出现色对立。傅里叶分析的应用提高了传统的fpet /MRI方法的空间和时间分辨率。色彩处理作为一种意识体验的计算在神经科学和人工智能中有着广泛的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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