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晚期轻度认知障碍患者外周血和脑脊液生物标志物的关联分析

Association Analysis of Peripheral and CSF Biomarkers in Late Mild Cognitive Impairment.

作者信息

Zhang Tao, Kong Wei, Wang Shuaiqun, Mou Xiaoyang

机构信息

College of Information Engineering, Shanghai Maritime University, Shanghai, China.

Department of Biochemistry, Rowan University and Guava Medicine, Glassboro, NJ, United States.

出版信息

Front Genet. 2020 Aug 12;11:834. doi: 10.3389/fgene.2020.00834. eCollection 2020.

Abstract

Research shows that late mild cognitive impairment (LMCI) has a high risk of turning into Alzheimer's disease (AD). Due to the invasion of detection methods and physical damage to the patients, it is not a convenient way to diagnose and detect early AD and LMCI by cerebrospinal fluid (CSF) data. So there is an urgent need to find the correlation between peripheral biological data and CSF data in the brain, and to find new diagnostic methods through changes in the peripheral biological data. Studies have shown that during the pathogenesis of LMCI and AD, peripheral immune cells specifically infiltrate into the brain through the blood-brain barrier, causing an imbalance in the brain's immune response and dysregulating the clearance of Aβ in CSF. Therefore, in this paper, canonical correlation analysis (CCA) algorithm is presented to derive the correlation between peripheral and CSF biomarkers based on LMCI peripheral gene expression data and plasma marker information. Firstly, to explore the influence of the infiltration of peripheral blood immune cells on the brain, the abundance of 28 immune cells were calculated by using the gene set enrichment analysis algorithm of LMCI samples. Then, to identify the correlation between biomarkers inside and outside of the brain, we performed CCA to calculate the relationship between CSF and peripheral biomarkers. Results of CCA showed significant correlations between the variable sets of 8 peripheral biomarkers and the variable sets of CSF biomarkers (at 0.794). Finally, according to Kyoto Encyclopedia of Genes and Genomes and Gene Ontology analysis, it was found that the obtained peripheral biomarkers are involved in many immune-related pathways and functions which can be activated in peripheral blood of LMCI patients. Most related genes enriched in immune-related pathways and functions were up-regulated. Through receiver operating characteristic curve (ROC) analysis, it was also found that FP40/FP42 and type 1 T helper can accurately predict the pathological changes of LMCI (at 0.747).

摘要

研究表明,晚期轻度认知障碍(LMCI)发展为阿尔茨海默病(AD)的风险很高。由于检测方法的侵入性以及对患者的身体损伤,通过脑脊液(CSF)数据诊断和早期检测AD和LMCI并非便捷方法。因此,迫切需要找到外周生物数据与大脑CSF数据之间的相关性,并通过外周生物数据的变化找到新的诊断方法。研究表明,在LMCI和AD的发病过程中,外周免疫细胞通过血脑屏障特异性浸润到大脑中,导致大脑免疫反应失衡,并使CSF中Aβ的清除失调。因此,本文提出典型相关分析(CCA)算法,基于LMCI外周基因表达数据和血浆标志物信息推导外周与CSF生物标志物之间的相关性。首先,为了探究外周血免疫细胞浸润对大脑的影响,使用LMCI样本的基因集富集分析算法计算了28种免疫细胞的丰度。然后,为了确定脑内外生物标志物之间的相关性,我们进行了CCA以计算CSF与外周生物标志物之间的关系。CCA结果显示8种外周生物标志物的变量集与CSF生物标志物的变量集之间存在显著相关性(相关系数为0.794)。最后,根据京都基因与基因组百科全书和基因本体分析,发现所获得的外周生物标志物参与了许多免疫相关途径和功能,这些途径和功能可在LMCI患者的外周血中被激活。大多数富集于免疫相关途径和功能的相关基因上调。通过受试者工作特征曲线(ROC)分析,还发现FP40/FP42和1型辅助性T细胞能够准确预测LMCI的病理变化(曲线下面积为0.747)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d4e/7437457/ee510ff45fb6/fgene-11-00834-g001.jpg

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