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Cerebrospinal fluid biomarkers of neurofibrillary tangles and synaptic dysfunction are associated with longitudinal decline in white matter connectivity: A multi-resolution graph analysis

机译:神经原纤维缠结和突触功能障碍的脑脊液生物标志物与白质连通性的纵向下降相关:多分辨率图分析

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摘要

In addition to the development of beta amyloid plaques and neurofibrillary tangles, Alzheimer's disease (AD) involves the loss of connecting structures including degeneration of myelinated axons and synaptic connections. However, the extent to which white matter tracts change longitudinally, particularly in the asymptomatic, preclinical stage of AD, remains poorly characterized. In this study we used a novel graph wavelet algorithm to determine the extent to which microstructural brain changes evolve in concert with the development of AD neuropathology as observed using CSF biomarkers. A total of 118 participants with at least two diffusion tensor imaging (DTI) scans and one lumbar puncture for CSF were selected from two observational and longitudinally followed cohorts. CSF was assayed for pathology specific to AD (Aβ42 and phosphorylated-tau), neurodegeneration (total-tau), axonal degeneration (neurofilament light chain protein; NFL), and synaptic degeneration (neurogranin). Tractography was performed on DTI scans to obtain structural connectivity networks with 160 nodes where the nodes correspond to specific brain regions of interest (ROIs) and their connections were defined by DTI metrics (i.e., fractional anisotropy (FA) and mean diffusivity (MD)). For the analysis, we adopted a multi-resolution graph wavelet technique called Wavelet Connectivity Signature (WaCS) which derives higher order representations from DTI metrics at each brain connection. Our statistical analysis showed interactions between the CSF measures and the MRI time interval, such that elevated CSF biomarkers and longer time were associated with greater longitudinal changes in white matter microstructure (decreasing FA and increasing MD). Specifically, we detected a total of 17 fiber tracts whose WaCS representations showed an association between longitudinal decline in white matter microstructure and both CSF p-tau and neurogranin. While development of neurofibrillary tangles and synaptic degeneration are cortical phenomena, the results show that they are also associated with degeneration of underlying white matter tracts, a process which may eventually play a role in the development of cognitive decline and dementia.
机译:除了β淀粉样蛋白斑块和神经原纤维缠结的发展,阿尔茨海默氏病(AD)还涉及连接结构的丧失,包括髓鞘轴突变性和突触连接。但是,白质束在纵向上变化的程度,特别是在无症状的,临床前的AD阶段,仍然没有很好的特征。在这项研究中,我们使用了一种新颖的图小波算法来确定脑部微结构变化的程度与使用CSF生物标记物观察到的AD神经病理学发展相一致的程度。从两个观察性和纵向随访的队列中选择了总共118名参与者,他们至少进行了两次扩散张量成像(DTI)扫描和一次腰穿CSF。分析了CSF的AD特异性病理(Aβ42和磷酸化tau),神经变性(total-tau),轴突变性(神经丝轻链蛋白; NFL)和突触变性(neurogranin)。在DTI扫描上进行了断层扫描,以获取具有160个节点的结构连接网络,其中这些节点对应于特定的感兴趣的大脑区域(ROI),并且它们的连接由DTI指标(即分数各向异性(FA)和平均扩散率(MD))定义。为了进行分析,我们采用了称为小波连通性签名(WaCS)的多分辨率图小波技术,该技术从每个大脑连接处的DTI指标中获取更高阶的表示。我们的统计分析表明,脑脊液测量值与MRI时间间隔之间存在相互作用,因此脑脊液生物标志物升高和时间延长与白质微结构的纵向变化更大(FA降低和MD升高)有关。具体来说,我们检测到总共17条纤维束,其WaCS表示显示白质微观结构的纵向下降与CSF p-tau和神经颗粒素之间存在关联。虽然神经原纤维缠结的发展和突触变性是皮层现象,但结果表明它们也与潜在的白质束的退化有关,这一过程最终可能在认知能力下降和痴呆的发展中发挥作用。

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