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Predicting Regional Neurodegeneration from the Healthy Brain Functional Connectome

机译:从健康的大脑功能连接体预测区域性神经变性

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摘要

Neurodegenerative diseases target large-scale neural networks. Four competing mechanistic hypotheses have been proposed to explain network-based disease patterning: nodal stress, transneuronal spread, trophic failure, and shared vulnerability. Here, we used task-free fMRI to derive the healthy intrinsic connectivity patterns seeded by brain regions vulnerable to any of five distinct neurodegenerative diseases. These data enabled us to investigate how intrinsic connectivity in health predicts region-by-region vulnerability to disease. For each illness, specific regions emerged as critical network " epicenters" whose normal connectivity profiles most resembled the disease-associated atrophy pattern. Graph theoretical analyses in healthy subjects revealed that regions with higher total connectional flow and, more consistently, shorter functional paths to the epicenters, showed greater disease-related vulnerability. These findings best fit a transneuronal spread model of network-based vulnerability. Molecular pathological approaches may help clarify what makes each epicenter vulnerable to its targeting disease and how toxic protein species travel between networked brain structures. Zhou et al. map the healthy brain's functional architecture to test models of network-based neurodegeneration. The findings suggest that each disease is associated with critical network " epicenters" and that regions more strongly connected to the epicenters show greater disease vulnerability.
机译:神经退行性疾病以大规模神经网络为目标。已经提出了四种相互竞争的机制假设来解释基于网络的疾病模式:节点应力,跨神经元扩散,营养性衰竭和共同的脆弱性。在这里,我们使用无任务功能磁共振成像来得出健康的内在连通性模式,该模式是由易受五种不同的神经退行性疾病之一侵袭的大脑区域所植入的。这些数据使我们能够研究健康中的内在联系如何预测疾病的逐区域脆弱性。对于每种疾病,特定区域都以关键网络“震中”的形式出现,其正常连通性特征最类似于与疾病相关的萎缩模式。在健康受试者中进行的图论分析表明,具有较高总连接流的区域,以及到震中的功能路径更短的区域,显示出与疾病相关的更大脆弱性。这些发现最适合基于网络的脆弱性的跨神经传播模型。分子病理学方法可能有助于弄清是什么使每个震中易受其靶向疾病的侵害,以及有毒蛋白质物种如何在网络化的大脑结构之间传播。周等。绘制健康大脑的功能架构,以测试基于网络的神经变性模型。研究结果表明,每种疾病都与关键网络“震中”有关,与震中联系更紧密的区域显示出更大的疾病易感性。

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