Identification of the Hub Gene LDB3 in Stanford Type A Aortic Dissection Based on Comprehensive Bioinformatics Analysis

IF 5.3
Xinyi Liu, Xing Liu, Bin Wan, Yipeng Ge, Haiou Hu, Hong Yu, Meng Zhao, Huadong Li, Junming Zhu
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Abstract

Stanford type A aortic dissection (TAAD) is a life-threatening disease. This study explored the role of LIM domain binding 3 (LDB3) in TAAD progression. Four datasets from the Gene Expression Omnibus were analyzed to identify TAAD-related hub genes. LDB3 single nucleotide polymorphisms (SNPs) were assessed in the UK Biobank. Western blotting and immunofluorescence detected LDB3 expression in angiotensin II (Ang II) stimulated human aortic vascular smooth muscle cells (HA-VSMC), human samples, and a murine model. Bioinformatics identified tissue inhibitor of metalloproteinase-1 (TIMP1) and LDB3 as TAAD hub genes. TIMP1 was expressed in macrophages, mesenchymal cells, and smooth muscle cells, while LDB3 was mostly expressed in smooth muscle cells. Validation showed TIMP1 was upregulated and LDB3 downregulated in TAAD. Six LDB3 SNPs were associated with aortic aneurysm and dissection in the UK Biobank. In human and murine samples, LDB3 expression was reduced in diseased tissues and co-localized with smooth muscle. Ang II-stimulated HA-VSMC exhibited LDB3 reduction and altered intercellular connections. The aforementioned findings suggest that the newly identified gene LDB3 is crucial in the progression of TAAD.

Abstract Image

基于综合生物信息学分析的Stanford A型主动脉夹层枢纽基因LDB3的鉴定
斯坦福A型主动脉夹层(TAAD)是一种危及生命的疾病。本研究探讨了LIM结构域结合3 (LDB3)在TAAD进展中的作用。分析了来自基因表达Omnibus的四个数据集,以确定taad相关的中心基因。LDB3单核苷酸多态性(snp)在UK Biobank中进行了评估。Western blotting和免疫荧光检测LDB3在血管紧张素II (Ang II)刺激的人主动脉血管平滑肌细胞(HA-VSMC)、人样本和小鼠模型中的表达。生物信息学鉴定组织金属蛋白酶-1抑制剂TIMP1和LDB3为TAAD中心基因。TIMP1在巨噬细胞、间充质细胞和平滑肌细胞中表达,而LDB3主要在平滑肌细胞中表达。验证表明TIMP1在TAAD中上调,LDB3下调。在UK Biobank中,6个LDB3 snp与主动脉瘤和夹层有关。在人类和小鼠样本中,LDB3在病变组织中的表达降低,并与平滑肌共定位。Ang ii刺激的HA-VSMC表现出LDB3减少和细胞间连接改变。上述研究结果表明,新发现的基因LDB3在TAAD的进展中起着至关重要的作用。
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来源期刊
CiteScore
11.50
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期刊介绍: The Journal of Cellular and Molecular Medicine serves as a bridge between physiology and cellular medicine, as well as molecular biology and molecular therapeutics. With a 20-year history, the journal adopts an interdisciplinary approach to showcase innovative discoveries. It publishes research aimed at advancing the collective understanding of the cellular and molecular mechanisms underlying diseases. The journal emphasizes translational studies that translate this knowledge into therapeutic strategies. Being fully open access, the journal is accessible to all readers.
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