收稿日期: 2024-04-25
网络出版日期: 2024-09-13
基金资助
湖南省自然科学基金项目(2024JJ9508);湖南省卫生健康委科研计划项目(B202317017605)
ALKBH5 reduce septic-induced myocardial dysfunction by regulating the TRAF1/NF-κB pathway
Received date: 2024-04-25
Online published: 2024-09-13
目的 探讨ALKBH5减轻脓毒症心肌损伤(SIMD)的分子机制。 方法 采用逆转录荧光定量聚合酶链反应(RT-qPCR)的方法检测50例SIMD患者及50例健康人血液中ALKBH5和TRAF1表达水平,并通过Pearson分析两者表达水平的相关性;细胞体外实验中,根据不同的处理方式(过表达TARF1和干扰ALKBH5表达)将心肌细胞H9C2分为7组,通过CCK8、免疫吸附实验(ELISA)、Western blot等实验方法研究ALKBH5靶向TRAF1调控脂多糖(LPS)诱导的心肌细胞损伤的分子机制;大鼠体内实验中,根据处理方式不同(过表达TARF1和干扰ALKBH5),将LPS诱导的大鼠分为6组,通过比色法、ELISA、Western blot、HE染色、免疫组化等实验方法进一步研究ALKBH5靶向TRAF1通过NF-κB通路减轻心肌细胞损伤的作用机制。 结果 ALKBH5和TRAF1在SIMD患者中表达水平下调,且Pearson分析显示两者呈正相关(P < 0.001);细胞体外实验表明,过表达TRAF1促进细胞的增殖,抑制炎症因子和NF-κB通路相关蛋白的表达,而敲低ALKBH5得到了相反的结果的;大鼠体内实验结果显示,敲低ALKBH5促进心肌细胞的损伤、炎症因子和NF-κB相关通路蛋白表达以及NF-κB p65蛋白的核易位,而过表达TRAF1得到了相反的结果。 结论 ALKBH5通过减少TRAF1的甲基化增加TRAF1的稳定性,从而抑制NF-κB通路,进而减轻SIMD。
刘敏 , 陈喜云 , 吕建磊 , 冯洁 . ALKBH5通过TRAF1/NF⁃κB通路减轻脓毒症心肌损伤的机制[J]. 实用医学杂志, 2024 , 40(17) : 2381 -2389 . DOI: 10.3969/j.issn.1006-5725.2024.17.005
Objective To investigate the molecular mechanism of ALKBH5 reducing sepsis-induced myocardial dysfunction (SIMD). Methods The expression levels of ALKBH5 and TRAF1 in the blood of 50 SIMD patients and 50 healthy individuals were detected using reverse transcription fluorescence quantitative polymerase chain reaction (RT-qPCR), and the correlation between their expression levels was analyzed by person analysis; In vitro experiments, H9C2 myocardial cells were divided into 7 groups according to over expression of TARF1 and knockdown ALKBH5. The molecular mechanism of ALKBH5 targeting TRAF1 to regulate lipopolysaccharide (LPS)induced myocardial cell damage was studied through experiments such as CCK8, ELISA, and Western blot; In the in vivo experiment of rats, LPS induced rats were divided into 6 groups according to over expression of TARF1 and knockdown ALKBH5. Experimental methods such as colorimetry, ELISA, Western blot, HE staining, and immunohistochemistry were used to study the mechanism of ALKBH5 targeting TRAF1 through NF- κB pathway in reducing myocardial cell damage. Results The expression levels of ALKBH5 and TRAF 1 were downregulated in SIMD, and the Pearson analysis showed a positive correlation between them(P < 0.001); In vitro experiments showed that overexpression of TRAF1 promotes cell proliferation, inhibits the expression of inflammatory factors and proteins involved in the NF- κB pathway, and knockdown ALKBH5 obtain the opposite resulst; In vivo experiments in rats showed that knockdown ALKBH5 promotes injury in cardiomyocytes, expression of inflammatory factors and NF- κB-related pathway proteins, and nuclear translocation of NF-κB p65 protein, but the overexpression of TRAF 1 yielded the opposite results. Conclusion ALKBH5 increases the stability of TRAF1 by reducing its methylation, thereby inhibiting NF- κB pathway, thereby reducing SIMD.
Key words: sepsis -induced myocardial dysfunction; ALKBH5; TRAF1; NF-κB
| 1 | KOTECHA A, VALLABHAJOSYULA S, COVILLE H H, et al. Cardiorenal syndrome in sepsis: A narrative review[J]. J Crit Care, 2018, 43:122-127. doi:10.1016/j.jcrc.2017.08.044 |
| 2 | INNOCENTI F, PALMIERI V, GUZZO A, et al. SOFA score and left ventricular systolic function as predictors of short-term outcome in patients with sepsis[J]. Intern Emerg Med, 2018, 13(1): 51-58. doi:10.1007/s11739-016-1579-3 |
| 3 | L'HEUREUX M, STERNBERG M, BRATH L, et al. Sepsis-Induced Cardiomyopathy: A Comprehensive Review[J]. Curr Cardiol Rep, 2020, 22(5):35. doi:10.1007/s11886-020-01277-2 |
| 4 | HOLLENBERG S M, SINGER M. Pathophysiology of sepsis-induced cardiomyopathy[J]. Nat Rev Cardiol, 2021, 18(6): 424-434. doi:10.1038/s41569-020-00492-2 |
| 5 | WANG J Y, WANG J Q, GU Q, et al. The biological function of m6A demethylase ALKBH5 and its role in human disease[J]. Cancer Cell Int, 2020, 20:347. doi:10.1186/s12935-020-01450-1 |
| 6 | HAN Z B, WANGX X, XU Z H, et al. ALKBH5 regulates cardiomyocyte proliferation and heart regeneration by demethylating the mRNA of YTHDF1[J]. Theranostics, 2021, 11(6):3000-3016. doi:10.7150/thno.47354 |
| 7 | 杨帆,武菲菲,苏洁,等. 姜黄素通过AMPK/FUNDC1缓解LPS诱导的心肌细胞损伤[J]. 医学研究杂志,2022,51(19):30-36. |
| 8 | 陈思聪,张雁斌,马扬杰. 人参皂苷Rg1对脓毒症所致心肌损伤大鼠HMGB1/NF-κB通路的影响[J]. 中国免疫学杂志,2023,39(8):1671-1677. doi:10.3969/j.issn.1000-484X.2023.08.019 |
| 9 | 敖雪,苏醒,侯宇,等. 基于p38MAPK/NF-κB研究miR-146a干预脓毒性心肌病的分子机制[J]. 实用医学杂志,2023,39(24):3188-3194. doi:10.3969/j.issn.1006-5725.2023.24.007 |
| 10 | 黄颖,唐立丽,关于琳,等. 脓毒症心肌损伤发病机制及治疗研究进展[J]. 实用医学杂志,2023,39(14):1848-1852. doi:10.3969/j.issn.1006-5725.2023.14.021 |
| 11 | ZHANG J, GUO S, PIAO H Y, et al. ALKBH5 promotes invasion and metastasis of gastric cancer by decreasing methylation of the lncRNA NEAT1[J]. J Physiol Biochem, 2019,75(3):379-389. doi:10.1007/s13105-019-00690-8 |
| 12 | ZHU H T, GAN X L, JIANG X W, et al. ALKBH5 inhibited autophagy of epithelial ovarian cancer through miR-7 and BCL-2[J]. J Exp Clin Cancer Res, 2019, 38(1): 163. doi:10.1186/s13046-019-1159-2 |
| 13 | ZHANG C Z, SAMANTA D, LU H Q, et al. Hypoxia induces the breast cancer stem cell phenotype by HIF-dependent and ALKBH5-mediated m?A-demethylation of NANOG mRNA[J]. Proc Natl Acad Sci U S A, 2016, 113 (14): E2047-E2056. doi:10.1073/pnas.1602883113 |
| 14 | ZHOU J, ZHANG X, HU J, et al. M6A demethylase ALKBH5 controls CD4+T cell pathogenicity and promotes autoimmunity[J]. Sci Adv, 2021, 7(25):eabg0470. doi:10.1126/sciadv.abg0470 |
| 15 | GAO Y, ZIMMER J T, VASIC R,et al. ALKBH5 modulates hematopoietic stem and progenitor cell energy metabolism through mA modification-mediated RNA stability control[J]. Cell Rep, 2023, 42(10):113163. doi:10.1016/j.celrep.2023.113163 |
| 16 | LANDFORS M, NAKKEN S, FUSSER M, et al. Sequencing of FTO and ALKBH5 in men undergoing infertility work-up identifies an infertility-associated variant and two missense mutations[J]. Fertil Steril, 2016, 105(5): 1170-1179.e5. doi:10.1016/j.fertnstert.2016.01.002 |
| 17 | YU J J, SHEN L J, LIU Y L, et al. The m6A methyltransferase METTL3 cooperates with demethylase ALKBH5 to regulate osteogenic differentiation through NF-κB signaling[J]. Mol Cell Biochem, 2020, 463(1/2): 203-210. doi:10.1007/s11010-019-03641-5 |
| 18 | TANG C, KLUKOVICH R, PENG H Y, et al. ALKBH5-dependent m6A demethylation controls splicing and stability of long 3'-UTR mRNAs in male germ cells[J]. Proc Natl Acad Sci U S A, 2018, 115(2): E325-E333. doi:10.1073/pnas.1717794115 |
| 19 | 吴春阳. 去甲基化酶ALKBH5依赖m6A修饰调控E2F8/PI3K/AKT信号轴抑制骨肉瘤恶性表型的机制研究[D]. 南昌:南昌大学,2023. |
| 20 | LIU Y, SONG R J, ZHAO L, et al. m6A demethylase ALKBH5 is required for antibacterial innate defense by intrinsic motivation of neutrophil migration[J]. Signal Transduct Target Ther, 2022, 7(1): 194. doi:10.1038/s41392-022-01020-z |
| 21 | PARBELL G P, TANG B M, NALOS M, et al. Identifying key regulatory genes in the whole blood of septic patients to monitor underlying immune dysfunctions[J]. Shock, 2013, 40(3):166-174. doi:10.1097/shk.0b013e31829ee604 |
| 22 | TANG X, ZHANG L, WEI W. Roles of TRAFs in NF-κB signaling pathways mediated by BAFF[J]. Immunol Lett, 2018, 196:113-118. doi:10.1016/j.imlet.2018.01.010 |
| 23 | 张鹏. TRAF1转导跨膜TNF-α反向信号组成性活化NF-κB通路及其对白血病细胞耐药的影响[D]. 武汉:华中科技大学,2021. |
| 24 | QU J W, HOU Y, CHEN Q X, et al. RNA demethylase ALKBH5 promotes tumorigenesis in multiple myeloma via TRAF1-mediated activation of NF-κB and MAPK signaling pathways[J]. Oncogene, 2022, 41(3):400-413. doi:10.1038/s41388-021-02095-8 |
| 25 | 周颖,蒋大军,田勇,等. 抑制TRAF6调节炎症和自噬改善脓毒症小鼠的心肌损伤和心功能[J]. 实用医学杂志,2024,40(5):608-416. |
/
| 〈 |
|
〉 |