Regulatory role and molecular mechanism of METTL14 in vascular endothelial cell injury in preeclampsia.

0 MEDICINE, RESEARCH & EXPERIMENTAL Biomolecules & biomedicine Pub Date : 2024-09-24 DOI:10.17305/bb.2024.10963
Huafang Wei, Lin Liang, Chengwen Song, Ming Tong, Xiang Xu
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Abstract

Preeclampsia (PE) is a pregnancy-related disease characterized by vascular endothelial cell injury. This study aimed to investigate the role of methyltransferase-like protein 14 (METTL14) in vascular endothelial cell injury in PE. The PE cell model was established by treating human umbilical vein endothelial cells (HUVECs) with tumor necrosis factor-alpha (TNF-α) in vitro. METTL14 and forkhead box protein 1 (FOXP1) were silenced, and miR-34a-5p was overexpressed in HUVECs to evaluate their effects. HUVEC viability, apoptosis, and the levels of intercellular adhesion molecule 1, vascular cell adhesion molecule 1, and endothelin-1 were measured. The N6-methyladenosine (m6A) modification of pri-miR-34a-5p was quantified. The interactions between miR-34a-5p, DiGeorge syndrome critical region 8, and m6A enrichment in miR-34a-5p were analyzed. The relationship between miR-34a-5p and FOXP1 was also verified. The results showed that the expressions of METTL14, FOXP1, and miR-34a-5p were determined. METTL14 expression was elevated in the TNF-α-induced HUVEC injury model. Silencing METTL14 improved HUVEC viability, inhibited apoptosis, and reduced endothelial inflammation. METTL14 promoted miR-34a-5p expression through m6A modification. Overexpression of miR-34a-5p or silencing of FOXP1 reversed the protective effects of METTL14 silencing on cell injury in the PE model. In conclusion, METTL14 mediated m6A modification to promote miR-34a-5p expression, leading to the inhibition of FOXP1 expression, which aggravated endothelial cell damage in the PE cell model.

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METTL14在子痫前期血管内皮细胞损伤中的调控作用和分子机制
子痫前期(PE)是一种以血管内皮细胞损伤为特征的妊娠相关疾病。本研究旨在探讨甲基转移酶样蛋白14(METTL14)在子痫前期血管内皮细胞损伤中的作用。通过在体外用肿瘤坏死因子-α(TNF-α)处理人脐静脉内皮细胞(HUVECs),建立了 PE 细胞模型。沉默 METTL14 和叉头盒蛋白 1 (FOXP1),并在 HUVECs 中过表达 miR-34a-5p,以评估它们的影响。检测了 HUVEC 的活力、凋亡以及细胞间粘附分子 1、血管细胞粘附分子 1 和内皮素-1 的水平。对 pri-miR-34a-5p 的 N6-甲基腺苷(m6A)修饰进行了量化。分析了 miR-34a-5p、迪乔治综合征临界区 8 和 miR-34a-5p 中 m6A 富集之间的相互作用。还验证了 miR-34a-5p 与 FOXP1 之间的关系。结果显示,METTL14、FOXP1和miR-34a-5p的表达均已确定。在 TNF-α 诱导的 HUVEC 损伤模型中,METTL14 表达升高。沉默 METTL14 可提高 HUVEC 的存活率、抑制细胞凋亡并减轻内皮炎症。METTL14 通过 m6A 修饰促进了 miR-34a-5p 的表达。在 PE 模型中,过表达 miR-34a-5p 或沉默 FOXP1 可逆转沉默 METTL14 对细胞损伤的保护作用。总之,METTL14介导的m6A修饰促进了miR-34a-5p的表达,从而抑制了FOXP1的表达,加重了PE细胞模型中内皮细胞的损伤。
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