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Reduced predictable information in brain signals in autism spectrum disorder

机译:自闭症谱系障碍中脑信号的可预测信息减少

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摘要

Autism spectrum disorder (ASD) is a common developmental disorder characterized by communication difficulties and impaired social interaction. Recent results suggest altered brain dynamics as a potential cause of symptoms in ASD. Here, we aim to describe potential information-processing consequences of these alterations by measuring active information storage (AIS)—a key quantity in the theory of distributed computation in biological networks. AIS is defined as the mutual information between the past state of a process and its next measurement. It measures the amount of stored information that is used for computation of the next time step of a process. AIS is high for rich but predictable dynamics. We recorded magnetoencephalography (MEG) signals in 10 ASD patients and 14 matched control subjects in a visual task. After a beamformer source analysis, 12 task-relevant sources were obtained. For these sources, stationary baseline activity was analyzed using AIS. Our results showed a decrease of AIS values in the hippocampus of ASD patients in comparison with controls, meaning that brain signals in ASD were either less predictable, reduced in their dynamic richness or both. Our study suggests the usefulness of AIS to detect an abnormal type of dynamics in ASD. The observed changes in AIS are compatible with Bayesian theories of reduced use or precision of priors in ASD.
机译:自闭症谱系障碍(ASD)是一种常见的发育障碍,其特征是沟通困难和社交互动受损。最近的结果表明,脑动力学改变是ASD症状的潜在原因。在这里,我们旨在通过测量活动信息存储(AIS)(这些信息是生物网络中分布式计算理论中的一个关键量)来描述这些变更的潜在信息处理后果。 AIS定义为过程的过去状态与其下一个度量之间的相互信息。它测量用于计算下一步骤的存储信息量。 AIS具有丰富但可预测的动态效果。我们在视觉任务中记录了10例ASD患者和14例匹配的对照对象的脑磁图(MEG)信号。经过波束形成器源分析后,获得了12个与任务相关的源。对于这些来源,使用AIS分析了固定基线活动。我们的结果显示,与对照组相比,ASD患者海马中的AIS值降低,这意味着ASD中的脑部信号要么较难预测,要么动态丰富性降低,要么两者都降低。我们的研究表明AIS可以检测ASD中异常类型的动力学。在AIS中观察到的变化与ASD中减少使用或先验精度的贝叶斯理论兼容。

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