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Dysfunctional brain dynamics and their origin in Lewy body dementia

机译:功能障碍性脑动力学及其在路易体痴呆症中的起源

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摘要

Lewy body dementia includes dementia with Lewy bodies and Parkinson’s disease dementia and is characterized by transient clinical symptoms such as fluctuating cognition, which might be driven by dysfunction of the intrinsic dynamic properties of the brain. In this context we investigated whole-brain dynamics on a subsecond timescale in 42 Lewy body dementia compared to 27 Alzheimer’s disease patients and 18 healthy controls using an EEG microstate analysis in a cross-sectional design. Microstates are transiently stable brain topographies whose temporal characteristics provide insight into the brain’s dynamic repertoire. Our additional aim was to explore what processes in the brain drive microstate dynamics. We therefore studied associations between microstate dynamics and temporal aspects of large-scale cortical-basal ganglia-thalamic interactions using dynamic functional MRI measures given the putative role of these subcortical areas in modulating widespread cortical function and their known vulnerability to Lewy body pathology. Microstate duration was increased in Lewy body dementia for all microstate classes compared to Alzheimer’s disease (P < 0.001) and healthy controls (P < 0.001), while microstate dynamics in Alzheimer’s disease were largely comparable to healthy control levels, albeit with altered microstate topographies. Correspondingly, the number of distinct microstates per second was reduced in Lewy body dementia compared to healthy controls (P < 0.001) and Alzheimer’s disease (P < 0.001). In the dementia with Lewy bodies group, mean microstate duration was related to the severity of cognitive fluctuations (ρ = 0.56, PFDR = 0.038). Additionally, mean microstate duration was negatively correlated with dynamic functional connectivity between the basal ganglia (r = − 0.53, P = 0.003) and thalamic networks (r = − 0.38, P = 0.04) and large-scale cortical networks such as visual and motor networks in Lewy body dementia. The results indicate a slowing of microstate dynamics and disturbances to the precise timing of microstate sequences in Lewy body dementia, which might lead to a breakdown of the intricate dynamic properties of the brain, thereby causing loss of flexibility and adaptability that is crucial for healthy brain functioning. When contrasted with the largely intact microstate dynamics in Alzheimer’s disease, the alterations in dynamic properties in Lewy body dementia indicate a brain state that is less responsive to environmental demands and might give rise to the apparent slowing in thinking and intermittent confusion which typify Lewy body dementia. By using Lewy body dementia as a probe pathology we demonstrate a potential link between dynamic functional MRI fluctuations and microstate dynamics, suggesting that dynamic interactions within the cortical-basal ganglia-thalamic loop might play a role in the modulation of EEG dynamics.
机译:路易氏体痴呆症包括路易氏体痴呆症和帕金森氏病性痴呆,其特征是短暂的临床症状,例如认知波动,这可能是由于大脑内在的动态特性失调所致。在这种情况下,我们使用横断面设计中的EEG微状态分析,以亚秒级的时间尺度对42名路易体痴呆患者的全脑动力学进行了比较,与27名阿尔茨海默氏病患者和18名健康对照组进行了比较。微观状态是暂时稳定的大脑地形,其时间特征可以洞悉大脑的动态库。我们的另一个目标是探索大脑中哪些过程会驱动微状态动力学。因此,鉴于这些皮层下区域在调节广泛的皮层功能中的假定作用及其已知的对路易体病理的脆弱性,我们使用动态功能核磁共振成像技术研究了微观状态动力学与大规模皮层-基底神经节-丘脑相互作用的时间方面之间的关联。与阿尔茨海默氏病(P <0.001)和健康对照(P <0.001)相比,所有微状态类别的路易氏体痴呆患者的微状态持续时间均增加,而阿尔茨海默氏病的微状态动态可与健康对照组水平相媲美,尽管微状态形态有所改变。相应地,与健康对照组(P <0.001)和阿尔茨海默氏病(P <0.001)相比,路易氏体痴呆症每秒减少的微状态数减少。在路易体痴呆组中,平均微状态持续时间与认知波动的严重程度有关(ρ= 0.56,PFDR = 0.038)。此外,平均微状态持续时间与基底神经节(r = − 0.53,P = 0.003)和丘脑网络(r = − 0.38,P = 0.04)与大规模皮层网络(例如视觉和运动)之间的动态功能连通性负相关。网络在路易体痴呆症。结果表明,路易体痴呆中的微状态动力学减慢并干扰了微状态序列的精确计时,这可能导致大脑复杂的动态特性崩溃,从而导致丧失灵活性和适应性,这对健康的大脑至关重要运作。与阿尔茨海默氏病的完整微状态动力学形成对比时,路易氏体痴呆症的动态特性改变表明大脑状态对环境需求的反应较弱,并可能导致思维缓慢和间歇性混乱,这是路易氏症的典型代表。通过使用路易氏体痴呆症作为探查病理,我们证明了动态功能性MRI波动与微状态动力学之间的潜在联系,表明皮质-基底神经节-丘脑环内的动力学相互作用可能在脑电动力学的调节中发挥作用。

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