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长链非编码RNA-HFRL表达增强通过隔离miR-149-5p介导的胶原蛋白22A抑制作用,诱导心肌细胞炎症、增殖和纤维化。

Enhancement of LncRNA-HFRL expression induces cardiomyocyte inflammation, proliferation, and fibrosis via the sequestering of miR-149-5p-mediated collagen 22A inhibition.

作者信息

Li Xiaohua, Teng Yun, Tian Miao, Qiu Hailong, Zhao Junfei, Gao Qiang, Zhang Yong, Zhuang Jian, Chen Jimei

机构信息

Department of Cardiovascular Surgery, Guangdong Cardiovascular Institute, Guangdong Provincial People's Hospital, Guangdong Academy of Medical Sciences, Guangzhou, China.

Guangdong Provincial Key Laboratory of South China Structural Heart Disease, Guangdong Provincial People's Hospital, Guangdong Academy of Medical Sciences, Guangzhou, China.

出版信息

Ann Transl Med. 2022 May;10(9):523. doi: 10.21037/atm-22-1756.

Abstract

BACKGROUND

Long non-coding ribonucleic acids (lncRNAs) are believed to play crucial roles in cardiovascular diseases; however, details of the underlying mechanisms by which this occurs remain unclear.

METHODS

A mouse heart failure (HF) model was established using isoproterenol (ISO), and confirmed by immunostaining and echocardiography. RNA-sequencing was performed to screen the differential lncRNA expression profiles and heart failure relative lncRNA (HFRL) was selected as the target which was validated by quantitative real-time polymerase chain reaction (qRT-PCR). In HL-1 cells, the cardiac function, inflammatory, and fibrosis-related genes expression changes were examined by qRT-PCR after silencing of HFRL by lentivirus. Meanwhile, Cell Counting Kit-8 (CCK-8) assays were used to detect the effects of HFRL on the cell proliferation and viability. Reactive oxygen species (ROS) assays were also used to explore the role of HFRL in oxidative damage. Next, bioinformatics analysis was conducted to predict the potential binding microRNAs (mmu-miR-149-5p) to HFRL, which was confirmed by RNA-pulldown assays. The target gene of miR-149-5p was also predicted and further validated by Dual-luciferase reporter assays, qRT-PCR, and western blot. To investigate the synergistic regulatory effect of HFRL and miR-149-5p, HL-1 cells were infected with the lentivirus of HFRL with or without simultaneous knockdown of miR-149-5p. Then, qRT-PCR and western blot were used to examine cardiac function, inflammatory, and fibrosis-related gene expression changes, respectively. In HL-1 cells, CCK-8 assays were performed to detect the proliferation and viability. ROS assays were used to explore the oxidative damage.

RESULTS

The administration of ISO induced mice fibrosis, inflammation, and HF. The results showed that knockdown of HFRL suppressed cardiomyocyte proliferation and viability, attenuated inflammatory, cardiac function, and fibrosis-related gene expression, and promoted oxidative damage. HFRL was found to bind to mmu-miR-149-5p and inversely target the 3'-untranscripted region of the collagen gene. Thus, HFRL affected cardiomyocyte inflammation, proliferation, viability, oxidative damage, and pro-fibrotic function via sequestration to miR-149-5p.

CONCLUSIONS

The HFRL/miR-149-5p axis plays an important role in regulating cardiac inflammation, proliferation, and fibrosis via a synergistic effect, which suggests that HFRL might be a novel target for HF.

摘要

背景

长链非编码核糖核酸(lncRNAs)被认为在心血管疾病中起关键作用;然而,其发生的潜在机制细节仍不清楚。

方法

使用异丙肾上腺素(ISO)建立小鼠心力衰竭(HF)模型,并通过免疫染色和超声心动图进行确认。进行RNA测序以筛选差异lncRNA表达谱,并选择心力衰竭相关lncRNA(HFRL)作为靶点,通过定量实时聚合酶链反应(qRT-PCR)进行验证。在HL-1细胞中,通过慢病毒沉默HFRL后,用qRT-PCR检测心脏功能、炎症和纤维化相关基因的表达变化。同时,使用细胞计数试剂盒-8(CCK-8)检测HFRL对细胞增殖和活力的影响。还使用活性氧(ROS)检测来探索HFRL在氧化损伤中的作用。接下来,进行生物信息学分析以预测与HFRL潜在结合的微小RNA(mmu-miR-149-5p),并通过RNA下拉试验进行确认。通过双荧光素酶报告基因试验、qRT-PCR和蛋白质印迹进一步预测并验证miR-149-5p的靶基因。为了研究HFRL和miR-149-5p的协同调节作用,用HFRL慢病毒感染HL-1细胞,同时敲低或不敲低miR-149-5p。然后,分别用qRT-PCR和蛋白质印迹检测心脏功能、炎症和纤维化相关基因的表达变化。在HL-1细胞中,进行CCK-8检测以检测增殖和活力。使用ROS检测来探索氧化损伤。

结果

给予ISO可诱导小鼠纤维化、炎症和HF。结果表明,敲低HFRL可抑制心肌细胞增殖和活力,减弱炎症、心脏功能和纤维化相关基因的表达,并促进氧化损伤。发现HFRL与mmu-miR-149-5p结合,并反向靶向胶原蛋白基因的3'-非转录区。因此,HFRL通过与miR-149-5p结合影响心肌细胞炎症、增殖、活力、氧化损伤和促纤维化功能。

结论

HFRL/miR-149-5p轴通过协同作用在调节心脏炎症、增殖和纤维化中起重要作用,这表明HFRL可能是HF的一个新靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/acc1/9347043/69390344713f/atm-10-09-523-f1.jpg

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