大脑加速衰老对帕金森病共激活模式动态的影响。

IF 2.9 3区 医学 Q2 NEUROSCIENCES
Su Yan, Jun Lu, Hongquan Zhu, Tian Tian, Yuanyuan Qin, Yuanhao Li, Wenzhen Zhu
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引用次数: 0

摘要

人们普遍认为衰老是大脑退化的主要风险因素,而帕金森病(PD)则倾向于遵循加速衰老的轨迹。我们旨在研究大脑结构老化对帕金森病大规模功能网络时间动态的影响。我们招募了 62 名帕金森病患者和 32 名健康对照组(HCs)。大脑老化程度是通过计算结构图像的全局和局部脑年龄差距估计值(G-脑年龄估计值和L-脑年龄估计值)来确定的。通过从静息态功能图像中识别共激活模式(CAP)来捕捉整个大脑的神经网络活动。使用一般线性模型评估了组间差异。随后,进行了 L-brainAGE 差异图和 CAPs 之间的空间相关性分析,以揭示功能改变的解剖学基础。与 HCs(-3.73 岁)相比,PD 患者的 G-brainAGE 显著升高(+1.93 岁),他们也表现出 L-brainAGE 的广泛升高。G-脑AGE与疾病的严重程度和持续时间相关。帕金森病患者在涉及激活默认模式和前顶叶网络(DMN-FPN)以及感觉运动和显著性网络(SMN-SN)的CAP中花费的时间较少,而且从其他CAP向DMN-FPN和SMN-SN CAP过渡的频率也较低。此外,局部脑龄加速的模式与SMN-SN CAP在空间上有相似之处。帕金森病患者大脑结构老化加速会对大脑功能产生不利影响,表现为大脑网络动态失调。这些发现深入揭示了神经退行性疾病的神经病理学机制,并暗示了通过减缓脑衰老过程来干预改变帕金森病进展的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The influence of accelerated brain aging on coactivation pattern dynamics in Parkinson's disease

Aging is widely acknowledged as the primary risk factor for brain degeneration, with Parkinson's disease (PD) tending to follow accelerated aging trajectories. We aim to investigate the impact of structural brain aging on the temporal dynamics of a large-scale functional network in PD. We enrolled 62 PD patients and 32 healthy controls (HCs). The level of brain aging was determined by calculating global and local brain age gap estimates (G-brainAGE and L-brainAGE) from structural images. The neural network activity of the whole brain was captured by identifying coactivation patterns (CAPs) from resting-state functional images. Intergroup differences were assessed using the general linear model. Subsequently, a spatial correlation analysis between the L-brainAGE difference map and CAPs was conducted to uncover the anatomical underpinnings of functional alterations. Compared to HCs (−3.73 years), G-brainAGE was significantly higher in PD patients (+1.93 years), who also exhibited widespread elevation in L-brainAGE. G-brainAGE was correlated with disease severity and duration. PD patients spent less time in CAPs involving activated default mode and the fronto-parietal network (DMN-FPN), as well as the sensorimotor and salience network (SMN-SN), and had a reduced transition frequency from other CAPs to the DMN-FPN and SMN-SN CAPs. Furthermore, the pattern of localized brain age acceleration showed spatial similarities with the SMN-SN CAP. Accelerated structural brain aging in PD adversely affects brain function, manifesting as dysregulated brain network dynamics. These findings provide insights into the neuropathological mechanisms underlying neurodegenerative diseases and imply the possibility of interventions for modifying PD progression by slowing the brain aging process.

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来源期刊
Journal of Neuroscience Research
Journal of Neuroscience Research 医学-神经科学
CiteScore
9.50
自引率
2.40%
发文量
145
审稿时长
1 months
期刊介绍: The Journal of Neuroscience Research (JNR) publishes novel research results that will advance our understanding of the development, function and pathophysiology of the nervous system, using molecular, cellular, systems, and translational approaches. JNR covers both basic research and clinical aspects of neurology, neuropathology, psychiatry or psychology. The journal focuses on uncovering the intricacies of brain structure and function. Research published in JNR covers all species from invertebrates to humans, and the reports inform the readers about the function and organization of the nervous system, with emphasis on how disease modifies the function and organization.
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