A new perspective on endometriosis: Integrating eQTL mendelian randomization with transcriptomics and single-cell data analyses

IF 3.9 4区 生物学 Q1 GENETICS & HEREDITY
Sheng Dou, Yi Wei, Zongyun Lin, Hui Wu, Fenglian Yang, Xuechang Cen, Wenjing Lu, Haimei Qin, Rong Wang, Junli Wang
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引用次数: 0

Abstract

Endometriosis is caused by the migration of endometrial cells to locations outside the uterine lining. Despite the increasing prevalence of endometriosis, there has been limited research on genetic effects, and its molecular mechanisms remain unclear. This study aimed to investigate the mechanisms underlying the development of endometriosis and to identify new genetic targets for endometriosis by integrating data from gene chips, single-cell mapping, and genome-wide association study databases. Using the Gene Expression Omnibus database, we downloaded data on normal endometrium, eutopic endometrium, and ectopic lesion tissues to explore the differentially expressed genes (DEGs) between normal and eutopic endometrium, and between eutopic and ectopic endometrium. Assessment of the relationships between DEGs and endometriosis involved differential expression, expression quantitative trait loci (eQTL), and Mendelian randomization (MR) analyses. Two single-cell atlas datasets were then analyzed to explore the mechanisms underlying disease development and progression. Intersection of MR results with DEGs between normal and eutopic endometrium highlighted 28 candidate biomarker genes (17 upregulated and 11 downregulated). Similarly, we identified two additional candidate biomarker genes by intersecting the DEGs between eutopic and ectopic endometrium with MR results. Among these 30 candidates, further filtering using single-cell datasets revealed that the histamine N-methyltransferase (HNMT), coiled-coil domain containing 28 A (CCDC28A), fatty acid desaturase 1 (FADS1) and mahogunin ring finger 1 (MGRN1) genes were differentially expressed between the normal and eutopic groups, consistent with transcriptomic and MR results. Our findings suggested that eutopic endometrium exhibits epithelial-mesenchymal transition (EMT). Cell communication analysis focused on ciliated epithelial cells expressing CDH1 and KRT23 revealed that, in the eutopic endometrium, ciliated epithelial cells are strongly correlated and interact with natural killer cells, T cells, and B cells. We identified four novel biomarker genes and found evidence for EMT in the eutopic endometrium. The mechanism of endometriosis progression may be closely related to EMT and changes in the immune microenvironment triggered by damage to ciliated epithelial cells.

子宫内膜异位症的新视角:整合eQTL孟德尔随机化与转录组学和单细胞数据分析
子宫内膜异位症是由子宫内膜细胞迁移到子宫内膜外引起的。尽管子宫内膜异位症的发病率越来越高,但对其遗传影响的研究有限,其分子机制尚不清楚。本研究旨在通过整合基因芯片、单细胞定位和全基因组关联研究数据库的数据,探讨子宫内膜异位症发生的机制,并确定子宫内膜异位症的新基因靶点。利用基因表达综合数据库,下载正常子宫内膜、异位子宫内膜和异位病变组织的数据,探讨正常子宫内膜和异位子宫内膜、异位子宫内膜和异位子宫内膜之间的差异表达基因(DEGs)。评估deg与子宫内膜异位症之间的关系涉及差异表达、表达数量性状位点(eQTL)和孟德尔随机化(MR)分析。然后分析两个单细胞图谱数据集,以探索疾病发生和进展的潜在机制。MR结果与正常和异位子宫内膜之间的deg交叉显示了28个候选生物标志物基因(17个上调,11个下调)。同样,我们通过将异位和异位子宫内膜之间的deg与MR结果相交,确定了另外两个候选生物标志物基因。在这30个候选基因中,使用单细胞数据集进一步筛选发现,组胺n -甲基转移酶(HNMT)、含有28A的线圈结构域(CCDC28A)、脂肪酸去饱和酶1 (FADS1)和红花素环指1 (MGRN1)基因在正常组和异位组之间存在差异表达,与转录组学和MR结果一致。我们的研究结果表明异位子宫内膜表现为上皮-间质转化(EMT)。对表达CDH1和KRT23的纤毛上皮细胞的细胞通讯分析表明,在异位子宫内膜中,纤毛上皮细胞与自然杀伤细胞、T细胞和B细胞密切相关并相互作用。我们确定了四个新的生物标记基因,并在异位子宫内膜中发现了EMT的证据。子宫内膜异位症的进展机制可能与EMT和纤毛上皮细胞损伤引发的免疫微环境变化密切相关。
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来源期刊
CiteScore
3.50
自引率
3.40%
发文量
92
审稿时长
2 months
期刊介绍: Functional & Integrative Genomics is devoted to large-scale studies of genomes and their functions, including systems analyses of biological processes. The journal will provide the research community an integrated platform where researchers can share, review and discuss their findings on important biological questions that will ultimately enable us to answer the fundamental question: How do genomes work?
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