Biological mechanism and functional verification of key genes related to major depressive disorder and type 2 diabetes mellitus.

IF 2.7 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Tao Fang, Na Shen, Zhemin Shi, Weishun Luo, Yanbo Di, Xuan Liu, Shengnan Ma, Jing Wang, Shike Hou
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引用次数: 0

Abstract

Major depressive disorder (MDD) and type 2 diabetes (T2D) have been shown to be linked, but a comprehensive understanding of the underlying molecular mechanisms remains elusive. The purpose of this study was to explore the biological relationship between MDD and T2D and verify the functional roles of key genes. We used the Gene Expression Omnibus database to investigate the targets associated with MDD and T2D. Using linear models for microarray data, differentially expressed genes associated with MDD and T2D were identified in GSE76826 and GSE95849, respectively, and 126 shared genes were significantly upregulated. Weighted gene coexpression network analysis identified modules associated with MDD and T2D in the GSE38206 and GSE20966 datasets and identified 8 common genes. Functional enrichment analysis revealed that these genes were enriched in cell signaling, enzyme activity, cell structure and amino acid biosynthesis and involved in cell death pathways. Finally, combined with the CTD and GeneCards databases, lysophosphatidylglycerol acyltransferase 1 (LPGAT1) was identified as a key gene. LPGAT1 was validated in GSE201332 and GSE182117, and the subject operating characteristic curve showed good diagnostic potential for MDD and T2D. Additionally, we used an in vitro model of MDD related to T2D to verify the expression of LPGAT1. A subsequent gene knockdown assay revealed that the downregulation of LPGAT1 improved mitochondrial function and reduced apoptosis in damaged neurons. Taken together, our results highlight the role of LPGAT1 in the connection between MDD and T2D, and these findings provide new insights into potential therapeutic targets for depression associated with diabetes.

重性抑郁障碍与2型糖尿病相关关键基因的生物学机制及功能验证。
重度抑郁障碍(MDD)与 2 型糖尿病(T2D)之间的关系已被证实,但对其潜在的分子机制的全面了解却仍遥遥无期。本研究旨在探索 MDD 和 T2D 之间的生物学关系,并验证关键基因的功能作用。我们利用基因表达总库数据库研究了与 MDD 和 T2D 相关的靶点。利用微阵列数据的线性模型,分别在 GSE76826 和 GSE95849 中发现了与 MDD 和 T2D 相关的差异表达基因,126 个共有基因被显著上调。加权基因共表达网络分析确定了 GSE38206 和 GSE20966 数据集中与 MDD 和 T2D 相关的模块,并确定了 8 个共同基因。功能富集分析表明,这些基因富集于细胞信号传导、酶活性、细胞结构和氨基酸生物合成,并参与细胞死亡通路。最后,结合 CTD 和 GeneCards 数据库,发现溶血磷脂酰甘油酰基转移酶 1(LPGAT1)是一个关键基因。LPGAT1 在 GSE201332 和 GSE182117 中得到了验证,受试者工作特征曲线显示其对 MDD 和 T2D 具有良好的诊断潜力。此外,我们还利用与 T2D 相关的 MDD 体外模型来验证 LPGAT1 的表达。随后的基因敲除试验显示,下调 LPGAT1 能改善线粒体功能,减少受损神经元的凋亡。综上所述,我们的研究结果凸显了 LPGAT1 在多发性抑郁症与 T2D 之间的联系中的作用,这些发现为糖尿病相关抑郁症的潜在治疗靶点提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Mammalian Genome
Mammalian Genome 生物-生化与分子生物学
CiteScore
4.00
自引率
0.00%
发文量
33
审稿时长
6-12 weeks
期刊介绍: Mammalian Genome focuses on the experimental, theoretical and technical aspects of genetics, genomics, epigenetics and systems biology in mouse, human and other mammalian species, with an emphasis on the relationship between genotype and phenotype, elucidation of biological and disease pathways as well as experimental aspects of interventions, therapeutics, and precision medicine. The journal aims to publish high quality original papers that present novel findings in all areas of mammalian genetic research as well as review articles on areas of topical interest. The journal will also feature commentaries and editorials to inform readers of breakthrough discoveries as well as issues of research standards, policies and ethics.
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