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PNAS Plus: Nonlinear dynamics underlying sensory processing dysfunction in schizophrenia

机译:PNAS Plus:精神分裂症感觉处理功能障碍的非线性动力学

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摘要

Natural systems, including the brain, often seem chaotic, since they are typically driven by complex nonlinear dynamical processes. Disruption in the fluid coordination of multiple brain regions contributes to impairments in information processing and the constellation of symptoms observed in neuropsychiatric disorders. Schizophrenia (SZ), one of the most debilitating mental illnesses, is thought to arise, in part, from such a network dysfunction, leading to impaired auditory information processing as well as cognitive and psychosocial deficits. Current approaches to neurophysiologic biomarker analyses predominantly rely on linear methods and may, therefore, fail to capture the wealth of information contained in whole EEG signals, including nonlinear dynamics. In this study, delay differential analysis (DDA), a nonlinear method based on embedding theory from theoretical physics, was applied to EEG recordings from 877 SZ patients and 753 nonpsychiatric comparison subjects (NCSs) who underwent mismatch negativity (MMN) testing via their participation in the Consortium on the Genetics of Schizophrenia (COGS-2) study. DDA revealed significant nonlinear dynamical architecture related to auditory information processing in both groups. Importantly, significant DDA changes preceded those observed with traditional linear methods. Marked abnormalities in both linear and nonlinear features were detected in SZ patients. These results illustrate the benefits of nonlinear analysis of brain signals and underscore the need for future studies to investigate the relationship between DDA features and pathophysiology of information processing.
机译:包括大脑在内的自然系统通常看起来很混乱,因为它们通常是由复杂的非线性动力学过程驱动的。多个大脑区域的流体协调中断会导致信息处理受损以及神经精神疾病中观察到的症状。精神分裂症(SZ)是最令人衰弱的精神疾病之一,被认为部分是由于这种网络功能障碍而引起的,从而导致听觉信息处理能力受损以及认知和社会心理缺陷。当前的神经生理生物标志物分析方法主要依靠线性方法,因此可能无法捕获整个EEG信号(包括非线性动力学)中包含的大量信息。在这项研究中,延迟微分分析(DDA)是一种基于理论物理学的嵌入理论的非线性方法,被应用于877例SZ患者和753例非精神病学比较对象(NCS)的脑电图记录中,他们通过参与参与失配阴性(MMN)测试在精神分裂症遗传学联盟(COGS-2)中进行研究。 DDA揭示了两组中与听觉信息处理相关的重要非线性动力学架构。重要的是,重要的DDA变化先于传统线性方法观察到的变化。在SZ患者中检测到线性和非线性特征的明显异常。这些结果说明了对大脑信号进行非线性分析的好处,并强调了未来研究以研究DDA功能与信息处理的病理生理学之间的关系的需求。

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