低敲长链非编码RNA-MALAT1通过mir -17-5p介导的内皮细胞焦亡改善糖尿病下肢动脉粥样硬化疾病

IF 1.6 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Juan Li, Jia-Xin Xu, Chun Wang, Fang-Fang Zhu
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引用次数: 0

摘要

我们观察了长链非编码RNA (lncRNA) MALAT1和microRNA (miR)-17-5p在糖尿病下肢动脉粥样硬化(LEAD)和EA. hy926人内皮细胞(EA. hy926细胞)中的表达。我们进一步研究敲低MALAT1 (sh-MALAT1)是否可以通过miR-17-5p保护内皮细胞,改善动脉粥样硬化的发生,旨在解剖其潜在机制。2型糖尿病患者分为两组:下肢动脉粥样硬化病变组(LEAD组)和无下肢动脉粥样硬化病变组(T2DM组)。在体外研究中,EA. hy926细胞培养物用高浓度葡萄糖处理并转染。获取MALAT1和miR-17-5p mRNA表达水平。双荧光素酶测定证实了分子间的关系。采用乳酸脱氢酶(LDH)测定、Hoechst 33342/碘化丙啶(PI)荧光染色和Western blotting评价生物学功能。在铅患者外周血样本和高糖培养的内皮细胞中,MALAT1高表达,miR-17-5p低表达。敲低MALAT1 (sh-MALAT1)或miR-17-5p模拟物可减轻高糖处理内皮细胞中LDH的释放、焦解热相关蛋白的水平和pi阳性细胞的数量,而miR-17-5p抑制剂具有相反的作用。双荧光素酶测定确定miR-17-5p是MALAT1的下游靶标。最后,sh-MALAT1和miR-17-5p抑制剂共同转染减弱了沉默的MALAT1对高糖介导的内皮细胞焦亡的保护作用。MALAT1可能通过调节miR-17-5p在高糖诱导的内皮细胞焦亡中发挥重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knockdown of Long Non-coding RNA-MALAT1 Ameliorates Diabetic Lower Limb Atherosclerotic Disease Through MiR-17-5p-Mediated Endothelial Cell Pyroptosis.

We observed the expression of long non-coding RNA (lncRNA) MALAT1 and microRNA (miR)-17-5p in patients with diabetic lower extremity atherosclerosis (LEAD) and EA. hy926 human endothelial cells (EA. Hy926 cells). We further investigated whether knockdown of MALAT1 (sh-MALAT1) could protect endothelial cells and improve the occurrence of atherosclerosis through miR-17-5p, aiming to dissect the underlying mechanism. Patients with type 2 diabetes were stratified into two groups: those with lower extremity atherosclerotic lesions (LEAD group) and those without (T2DM group). For in vitro studies, EA. hy926 cell cultures were treated with high glucose concentrations and transfected. The mRNA expression levels of MALAT1 and miR-17-5p were accessed. The relationship between molecules was verified by double luciferase assay. Biological function was evaluated using lactate dehydrogenase (LDH) assay, Hoechst 33342/propidium iodide (PI) fluorescence staining, and Western blotting. MALAT1 was highly expressed and miR-17-5p was lowly expressed in both peripheral blood samples from LEAD patients and high glucose-cultured endothelial cells. Knockdown of MALAT1 (sh-MALAT1) or miR-17-5p mimic attenuated the release of LDH, the levels of pyroptosis-associated protein, and the number of PI-positive cells in high glucose-treated endothelial cells, while the miR-17-5p inhibitors had the opposite effect. The dual-luciferase assay determined that miR-17-5p is a downstream target of MALAT1. Finally, co-transfection with sh-MALAT1 and miR-17-5p inhibitors attenuated the protective effect of silenced MALAT1 on high glucose-mediated endothelial cell pyroptosis. MALAT1 may play an essential role in high glucose-induced endothelial cell pyroptosis by regulating miR-17-5p.

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来源期刊
Biochemical Genetics
Biochemical Genetics 生物-生化与分子生物学
CiteScore
3.90
自引率
0.00%
发文量
133
审稿时长
4.8 months
期刊介绍: Biochemical Genetics welcomes original manuscripts that address and test clear scientific hypotheses, are directed to a broad scientific audience, and clearly contribute to the advancement of the field through the use of sound sampling or experimental design, reliable analytical methodologies and robust statistical analyses. Although studies focusing on particular regions and target organisms are welcome, it is not the journal’s goal to publish essentially descriptive studies that provide results with narrow applicability, or are based on very small samples or pseudoreplication. Rather, Biochemical Genetics welcomes review articles that go beyond summarizing previous publications and create added value through the systematic analysis and critique of the current state of knowledge or by conducting meta-analyses. Methodological articles are also within the scope of Biological Genetics, particularly when new laboratory techniques or computational approaches are fully described and thoroughly compared with the existing benchmark methods. Biochemical Genetics welcomes articles on the following topics: Genomics; Proteomics; Population genetics; Phylogenetics; Metagenomics; Microbial genetics; Genetics and evolution of wild and cultivated plants; Animal genetics and evolution; Human genetics and evolution; Genetic disorders; Genetic markers of diseases; Gene technology and therapy; Experimental and analytical methods; Statistical and computational methods.
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