Alzheimer's Disease Is Associated with Increased Network Assortativity: Evidence from Metabolic Connectivity.

IF 2.4 3区 医学 Q3 NEUROSCIENCES
Brain connectivity Pub Date : 2023-12-01 Epub Date: 2023-11-27 DOI:10.1089/brain.2023.0024
Sunil Kumar Khokhar, Manoj Kumar, Sandeep Kumar, Tejaswini Manae, Nithin Thanissery, Subasree Ramakrishnan, Faheem Arshad, Chandana Nagaraj, Sandhya Mangalore, Suvarna Alladi, Tapan K Gandhi, Rose Dawn Bharath
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引用次数: 0

Abstract

Introduction: Unraveling the network pathobiology in neurodegenerative disorders is a popular and promising field in research. We use a relatively newer network measure of assortativity in metabolic connectivity to understand network differences in patients with Alzheimer's Disease (AD), compared with those with mild cognitive impairment (MCI). Methods: Eighty-three demographically matched patients with dementia (56 AD and 27 MCI) who underwent positron emission tomography-magnetic resonance imaging (PET-MRI) study were recruited for this exploratory study. Global and nodal network measures obtained using the BRain Analysis using graPH theory toolbox were used to derive group-level differences (corrected p < 0.05). The methods were validated in age, and gender-matched 23 cognitively normal, 25 MCI, and 53 AD patients from the publicly available Alzheimer's Disease Neuroimaging Initiative (ADNI) data. Regions that revealed significant differences were correlated with the Addenbrooke's Cognitive Examination-III (ACE-III) scores. Results: Patients with AD revealed significantly increased global assortativity compared with the MCI group. In addition, they also revealed increased modularity and decreased participation coefficient. These findings were validated in the ADNI data. We also found that the regional standard uptake values of the right superior parietal and left superior temporal lobes were proportional to the ACE-III memory subdomain scores. Conclusion: Global errors associated with network assortativity are found in patients with AD, making the networks more regular and less resilient. Since the regional measures of these network errors were proportional to memory deficits, these measures could be useful in understanding the network pathobiology in AD.

阿尔茨海默病与网络分类增加有关:来自代谢连接的证据。
引言:揭示神经退行性疾病的网络病理生物学是一个热门且有前景的研究领域。我们使用一种相对较新的代谢连接性分类网络测量方法来了解阿尔茨海默氏痴呆症(AD)患者与轻度认知障碍(MCI)患者的网络差异。方法:83名接受PET-MRI研究的人口统计学匹配的痴呆患者(56名AD和27名MCI)被招募参加这项探索性研究。使用BRAPH工具箱获得的全局和节点网络测量用于推导组水平差异(校正p结果:与MCI组相比,AD患者显示出显著增加的整体分类性。此外,他们还显示出模块性增加和参与系数降低。这些发现在ADNI数据中得到了验证。我们还发现,右顶叶和左颞叶上叶的区域SUV(标准摄取值)测量与ACE-III记忆子域得分成比例。结论:在AD患者中发现了与网络分类相关的全局错误,使网络更加规则,弹性较差。由于这些网络错误的区域测量与记忆缺陷成比例,这些测量可能有助于理解AD的网络病理生物学。
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来源期刊
Brain connectivity
Brain connectivity Neuroscience-General Neuroscience
CiteScore
4.80
自引率
0.00%
发文量
80
期刊介绍: Brain Connectivity provides groundbreaking findings in the rapidly advancing field of connectivity research at the systems and network levels. The Journal disseminates information on brain mapping, modeling, novel research techniques, new imaging modalities, preclinical animal studies, and the translation of research discoveries from the laboratory to the clinic. This essential journal fosters the application of basic biological discoveries and contributes to the development of novel diagnostic and therapeutic interventions to recognize and treat a broad range of neurodegenerative and psychiatric disorders such as: Alzheimer’s disease, attention-deficit hyperactivity disorder, posttraumatic stress disorder, epilepsy, traumatic brain injury, stroke, dementia, and depression.
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