免疫球蛋白A肾病患者坏死相关关键基因及免疫景观的鉴定。

IF 2.2 4区 医学 Q2 UROLOGY & NEPHROLOGY BMC Nephrology Pub Date : 2024-12-18 DOI:10.1186/s12882-024-03885-4
Ruikun Hu, Ziyu Liu, Huihui Hou, Jingyu Li, Ming Yang, Panfeng Feng, Xiaorong Wang, Dechao Xu
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引用次数: 0

摘要

背景:免疫球蛋白A肾病(IgAN)是慢性肾脏疾病(CKD)和肾衰竭的主要原因。坏死性上睑下垂是一种新型的程序性细胞死亡,已被证明与传染病、心血管疾病、神经系统疾病等的发病机制有关。然而,坏死性上睑下垂在IgAN中的作用尚不清楚。方法:本研究采用综合生物信息学方法,探讨坏死相关基因在IgAN发病机制中的作用。微阵列数据集GSE93798和GSE115857从Gene Expression Omnibus (GEO)下载。采用R软件“limma”包鉴定IgAN与健康对照间坏死相关差异表达基因(NRDEGs)。使用Clusterprofiler进行GO和KEGG功能富集分析。最小绝对收缩和选择算子(LASSO)回归分析确定了枢纽nrdeg。我们进一步建立了由7个诊断中心nrdeg组成的诊断模型,并通过外部数据集验证了其有效性。在sc-RNA数据集GSE171314中证实了hub基因的表达。通过免疫浸润、基因集富集分析和转录因子结合基序富集分析进一步揭示其作用。结果:从RNA-seq数据集GSE9379中鉴定出健康个体与IgAN患者之间的1076个差异表达基因。然后我们将它们与坏死相关基因交联得到9个nrdeg。LASSO回归分析筛选出IgAN的7个枢纽基因(JUN、CD274、SERTAD1、NFKBIA、H19、UCHL1和EZH2)。我们进一步进行功能富集分析,并基于数据集GSE93798构建诊断模型。GSE115857作为独立验证队列,具有较好的预测效果。免疫浸润、基因集富集分析和转录因子结合基序富集分析揭示了其潜在功能。最后,我们筛选出四种预测具有IgAN治疗价值的药物。结论:总之,我们确定了7个中枢坏死相关基因,它们可以作为IgAN预测和治疗的潜在遗传生物标志物。预测了四种药物作为潜在的治疗方案。总的来说,我们提供了在转录组水平上对坏死相关机制和IgAN治疗的见解。
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Identification of key necroptosis-related genes and immune landscape in patients with immunoglobulin A nephropathy.

Background: Immunoglobulin A nephropathy (IgAN) is a major cause of chronic kidney disease (CKD) and kidney failure. Necroptosis is a novel type of programmed cell death that has been proved to be associated with the pathogenesis of infectious disease, cardiovascular disease, neurological disorders and so on. However, the role of necroptosis in IgAN remains unclear.

Methods: In this study, we explored the role of necroptosis-related genes in the pathogenesis of IgAN using a comprehensive bioinformatics method. Microarray datasets GSE93798 and GSE115857 were downloaded from Gene Expression Omnibus (GEO). "limma" package of R software was employed to identify necroptosis-related differentially expressed genes (NRDEGs) between IgAN and healthy controls. GO and KEGG functional enrichment analysis was performed by Clusterprofiler. Least absolute shrinkage and selection operator (LASSO) regression analysis identified hub NRDEGs. We further established a diagnostic model consisting of 7 diagnostic hub NRDEGs and validated the efficacy by an external dataset. The expression of hub genes was confirmed in sc-RNA dataset GSE171314. Immune infiltration, gene set enrichment analysis and transcription factor binding motifs enrichment analysis were conducted to further uncover their roles.

Results: 1076 differentially expressed genes were identified between healthy individuals and IgAN patients from RNA-seq dataset GSE9379. Then we cross-linked them with necroptosis-related genes to obtain 9 NRDEGs. LASSO regression analysis screened out 7 hub genes (JUN, CD274, SERTAD1, NFKBIA, H19, UCHL1 and EZH2) of IgAN. We further conducted functional enrichment analysis and constructed the diagnostic model based on dataset GSE93798. GSE115857 was used as the independent validation cohort and indicated a great predictive efficacy. Immune infiltration, gene set enrichment analysis and transcription factor binding motifs enrichment analysis revealed their potential function. Finally, we screened out four drugs that were predicted to have therapeutic value of IgAN.

Conclusions: In summary, we identified 7 hub necroptosis-associated genes, which can be used as potential genetic biomarkers for IgAN prediction and treatment. Four drugs were predicted as the potential therapeutic solutions. Collectively, we provided insights into the necroptosis-related mechanisms and treatment of IgAN at the transcriptome level.

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来源期刊
BMC Nephrology
BMC Nephrology UROLOGY & NEPHROLOGY-
CiteScore
4.30
自引率
0.00%
发文量
375
审稿时长
3-8 weeks
期刊介绍: BMC Nephrology is an open access journal publishing original peer-reviewed research articles in all aspects of the prevention, diagnosis and management of kidney and associated disorders, as well as related molecular genetics, pathophysiology, and epidemiology.
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