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山东大学学报 (医学版) ›› 2024, Vol. 62 ›› Issue (6): 17-29.doi: 10.6040/j.issn.1671-7554.0.2024.0163

• 基础医学 • 上一篇    

microRNA-210-3p通过调控TET2的表达抑制大鼠炎性疼痛

卫嘉晟1,杨保仲2,魏伟1,薛亚婷1,崔臣龙1,方俊1   

  • 发布日期:2024-07-15
  • 通讯作者: 杨保仲. E-mail:yangbz2000@163.com
  • 基金资助:
    太原市科技计划项目(202232)

MicroRNA-210-3p inhibits inflammatory pain in rats by regulation ten-eleven translocation 2 expression

WEI Jiacheng1, YANG Baozhong2, WEI Wei1, XUE Yating1, CUI Chenlong1, FANG Jun1   

  1. 1. College of Anesthesiology, Shanxi Medical University, Taiyuan 030001, Shanxi, China;
    2. Department of Anaesthesia and Surgery, Taiyuan Central Hospital, Taiyuan 030006, Shanxi, China
  • Published:2024-07-15

摘要: 目的 探讨microRNA-210-3p(miR-210-3p)与10-11易位蛋白2(ten-eleven translocation 2,TET2)在完全弗氏佐剂(complete freunds adjuvant, CFA)诱导的大鼠炎性疼痛模型中的作用及其相互调控机制。 方法 通过生物信息学方法和双荧光素酶实验,分析并确定大鼠miR-210-3p中可以靶向调节的基因。实验中的质粒和miR-210-3p共转染组合分为pmirGLO+mimics NC组、pmirGLO+mimics-miR-210-3p组、TET2-WT-pmirGLO+mimics-NC组、TET2-WT-pmirGLO+mimics-miR-210-3p组、TET2-MT-pmirGLO+mimics-NC组和TET2-MT-pmirGLO+mimics-miR-210-3p组;60只大鼠按随机数字表法分为正常对照(normal control, CON)组(n=20)、CFA组(n=20)、CFA+腺相关病毒载体阴性对照(adeno-associated virus negative control, AAV NC)组(n=10)、CFA+AAV miR-210-3p抑制剂(adeno-associated virus miR-210-3p inhibitor, AAVi)组(n=10)。通过在大鼠左后足底部皮下注入CFA的方式建立大鼠炎性疼痛模型;通过尾静脉注入miR-210-3p inhibitor的AAV建立干预模型;观察并测量大鼠行为学;采用RT-qPCR法检测miR-210-3p的表达量;采用Western blotting法和免疫荧光染色法检测L4~L6腰膨大节段脊髓中TET2蛋白的表达水平及荧光强度的变化;采用免疫荧光染色法观察TET2蛋白在大鼠脊髓中的细胞表达定位。 结果 生物信息学方法发现,TET2基因3'UTR区域存在与miR-210-3p的结合位点;双荧光素酶报告基因实验证实了miR-210-3p与TET2基因之间存在结合位点,呈负向调控关系;注射CFA显著减小了大鼠的机械缩足反射阈值(paw withdrawal mechanical threshold, PWMT)和热缩足潜伏期(paw thermal withdrawal latency, PTWL)(P<0.05);CFA组大鼠脊髓腰膨大中miR-210-3p的表达水平明显上调,伴随着TET2的表达水平降低(P<0.05);免疫荧光结果显示,TET2蛋白主要和神经元细胞存在共定位:CFA组大鼠脊髓内TET2蛋白表达水平降低(P<0.05);经过AAVi干预后,CFA+AAVi组大鼠在各个时间的PWMT和PTWL较CFA+AAV NC组大鼠升高(P<0.05);CFA+AAVi组大鼠脊髓组织中TET2蛋白表达较CFA+AAV NC组升高(P<0.05)。 结论 miR-210-3p可以抑制TET2蛋白表达,通过抑制miR-210-3p在炎性疼痛大鼠中的表达可以有效减轻炎性疼痛。

关键词: microRNA-210-3p, 10-11 易位蛋白 2, 炎性疼痛, 完全弗氏佐剂, 腺相关病毒载体

Abstract: Objective To investigate the roles and mutual regulatory mechanisms of microRNA-210-3p(miR-210-3p)and ten-eleven translocation 2(TET2)in a rat model of inflammatory pain induced by complete Freunds adjuvant(CFA). Methods Bioinformatics and dual-luciferase reporter assays were used to analyse and identify target genes regulated by miR-210-3p in rats. The combinations of plasmid and miR-210-3p cotransfection in the experiments were grouped as follows: pmirGLO+mimics-NC group, pmirGLO+mimics-miR-210-3p group, TET2-WT-pmirGLO+mimics-NC group, TET2-WT-pmirGLO+mimics-miR-210- 3p group, TET2-MT-pmirGLO+mimics-NC group and TET2-MT-pmirGLO+mimics-miR-210-3p group; 60 rats were divided into 4 groups according to the randomised numerical table method: Normal control(CON)group(n=20), Complete Freunds adjuvant(CFA)group(n=20 ), Complete Freunds adjuvant + adeno-associated virus vector negative control(CFA + AAV NC)group(n=10 ), Complete Freunds adjuvant + adeno-associated virus miR-210-3p inhibitor(CFA + AAVi)group(n=10 ). The rat inflammatory pain model was established by subcutaneous injection of CFA into the underside of the left hind paw; the intervention model was established by tail vein injection of AAV with miR-210-3p inhibitor; the behaviour of the rats was observed and measured; the expression of miR-210-3p was detected by RT-qPCR; Western blotting and immunofluorescence staining were used to detect changes in the expression level and fluorescence intensity of TET2 protein in the spinal cord of lumbar extension segments from L4 to L6; and immunofluorescence staining was used to observe the cellular expression localisation of TET2 protein in the rat spinal cord. Results Dual-luciferase assays confirmed a negative regulatory relationship between miR-210-3p and TET2, as evidenced by a binding site. CFA injection significantly decreased the mechanical paw withdrawal mechanical threshold(PWMT)and the thermal paw thermal withdrawal latency(PTWL)(P<0.05). An increase in miR-210-3p and a concomitant decrease in TET2 protein expression were observed in the CFA group(P<0.05). Immunofluorescence showed that TET2 protein mainly colocalised with neuronal cells and its expression in the spinal cord was decreased in the CFA group(P<0.05). After AAVi treatment, PWMT and PTWL were significantly higher in the CFA+AAVi group than in the CFA+AAV NC group(P<0.05), with increased TET2 protein levels(P<0.05). Conclusion miR-210-3p downregulates TET2 protein expression; its inhibition in rats with inflammatory pain significantly alleviates pain symptoms.

Key words: microRNA-210-3p, Ten-eleven translocation methylcytosine dioxygenase 2, Inflammatory pain, Complete Freunds adjuvant: Adeno-associated virus vector

中图分类号: 

  • R741
[1] 朱方强, 陈民佳, 朱明, 等. 炎症与组织再生修复[J]. 中华损伤与修复杂志(电子版), 2017, 12(1): 72-76. ZHU Fangqiang, CHEN Minjia, ZHU Ming, et al. Inflammatory and tissue regeneration, repair[J]. Chinese Journal of Injury Repair and Wound Healing(Electronic Edition), 2017, 12(1): 72-76.
[2] Dai Z, Chu H, Ma J, et al. The regulatory mechanisms and therapeutic potential of microRNAs: from chronic pain to morphine tolerance[J]. Front Mol Neurosci, 2018, 11: 80. doi:10.3389/fnmol.2018.00080.
[3] Altarifi A, Alsalem M, Mustafa A. Effects of intraplantar administration of Complete Freund’s Adjuvant(CFA)on rotarod performance in mice[J]. Scand J Pain, 2019, 19(4): 805-811.
[4] 王威严, 杨清锐, 师健民, 等. 伯氏疏螺旋体诱导大鼠类风湿关节炎模型的建立[J]. 山东大学学报(医学版), 2015, 53(9): 47-52. WANG Weiyan, YANG Qingrui, SHI Jianmin, et al. Establishment of rat models of rheumatoid arthritis induced by Borrelia burgdorferi[J]. Journal of Shandong University(Health Science), 2015, 53(9): 47-52.
[5] 陈佳祎, 潘莹倩, 张新军, 等. 非甾体抗炎药相关小肠损伤的研究进展[J]. 中国现代医生, 2023, 61(29): 135-138.
[6] Feehan AK, Zadina JE. Morphine immunomodulation prolongs inflammatory and postoperative pain while the novel analgesic ZH853 accelerates recovery and protects against latent sensitization[J]. J Neuroinflammation, 2019, 16(1): 100.
[7] Descalzi G, Ikegami D, Ushijima T, et al. Epigenetic mechanisms of chronic pain[J]. Trends Neurosci, 2015, 38(4): 237-246.
[8] Zhang Z, Cai YQ, Zou F, et al. Epigenetic suppression of GAD65 expression mediates persistent pain[J]. Nat Med, 2011, 17(11): 1448-1455.
[9] Li X, Liu DZ, Dai ZS, et al. Intraperitoneal 5-azacytidine alleviates nerve injury-induced pain in rats by modulating DNA methylation[J]. Mol Neurobiol, 2023, 60(4): 2186-2199.
[10] Cong BY, Zhang Q, Cao XT. The function and regulation of TET2 in innate immunity and inflammation[J]. Protein Cell, 2021, 12(3): 165-173.
[11] Bird L. Inflammation: TET2: the terminator[J]. Nat Rev Immunol, 2015, 15(10): 598.
[12] Chamessian AG, Qadri YJ, Cummins M, et al. 5-Hydroxymethylcytosine(5hmC)and Ten-eleven translocation 1-3(TET1-3)proteins in the dorsal root Ganglia of mouse: expression and dynamic regulation in neuropathic pain[J]. Somatosens Mot Res, 2017, 34(2): 72-79.
[13] 贾树山. 初级感觉神经元TET1调控钾通道表达参与化疗痛的表观遗传学机制研究[D]. 济南: 山东大学, 2018.
[14] Pan Z, Xue ZY, Li GF, et al. DNA hydroxymethylation by ten-eleven translocation methylcytosine dioxygenase 1 and 3 regulates nociceptive sensitization in a chronic inflammatory pain model[J]. Anesthesiology, 2017, 127(1): 147-163.
[15] Esteller M. Non-coding RNAs in human disease[J]. Nat Rev Genet, 2011, 12: 861-874. doi:10.1038/nrg3074.
[16] 伍华东, 丁颖, 徐广峰. microRNA与mRNA不同位点结合后的生物学效应研究进展[J]. 山东医药, 2017, 57(30): 111-112.
[17] Ma Q, Dasgupta C, Shen G, et al. MicroRNA-210 downregulates TET2 and contributes to inflammatory response in neonatal hypoxic-ischemic brain injury[J]. J Neuroinflammation, 2021, 18(1): 6.
[18] Li Y, Song R, Shen G, et al. MicroRNA-210 downregulates TET2(ten-eleven translocation methylcytosine dioxygenase 2)and contributes to neuroinflammation in ischemic stroke of adult mice[J]. Stroke, 2023, 54(3): 857-867.
[19] Zhang DW, Cao XR, Li J, et al. MiR-210 inhibits NF-κB signaling pathway by targeting DR6 in osteoarthritis[J]. Sci Rep, 2015, 5: 12775. doi:10.1038/srep12775.
[20] Weng HR, Taing K, Chen L, et al. EZH2 methyltransferase regulates neuroinflammation and neuropathic pain[J]. Cells, 2023, 12(7): 1058.
[21] Liang L, Lutz BM, Bekker A, et al. Epigenetic regulation of chronic pain[J]. Epigenomics, 2015, 7(2): 235-245.
[22] Hua T, Yang M, Song H, et al. Huc-MSCs-derived exosomes attenuate inflammatory pain by regulating microglia pyroptosis and autophagy via the miR-146a-5p/TRAF6 axis[J]. J Nanobiotechnology, 2022, 20(1): 324.
[23] Bai G, Ambalavanar R, Wei D, et al. Downregulation of selective microRNAs in trigeminal ganglion neurons following inflammatory muscle pain[J]. Mol Pain, 2007, 3: 15. doi: 10.1186/1744-8069-3-15.
[24] Wang C, Zhang ZZ, Yang W, et al. MiR-210 facilitates ECM degradation by suppressing autophagy via silencing of ATG7 in human degenerated NP cells[J]. Biomed Pharmacother, 2017, 93: 470-479. doi:10.1016/j.biopha.
[25] Virga F, Cappellesso F, Stijlemans B, et al. Macrophage miR-210 induction and metabolic reprogramming in response to pathogen interaction boost life-threatening inflammation[J]. Sci Adv, 2021, 7(19): eabf0466.
[26] Voloboueva LA, Sun X, Xu L, et al. Distinct effects of miR-210 reduction on neurogenesis: increased neuronal survival of inflammation but reduced proliferation associated with mitochondrial enhancement[J]. J Neurosci, 2017, 37(11): 3072-3084.
[27] Chen Y, Peng F, Yang C, et al. SIRT1 activation by 2, 3, 5, 6-tetramethylpyrazine alleviates neuroinflammation via inhibiting M1 microglia polarization[J]. Front Immunol, 2023, 14: 1206513. doi:10.3389/fimmu.
[28] Li B, Dasgupta C, Huang L, et al. MiRNA-210 induces microglial activation and regulates microglia-mediated neuroinflammation in neonatal hypoxic-ischemic encephalopathy[J]. Cell Mol Immunol, 2020, 17: 976-991. doi:10.1038/s41423-019-0257-6.
[29] Xie W, Su W, Xia H, et al. Synovial fluid microRNA-210 as a potential biomarker for early prediction of osteoarthritis[J]. BioMed Res Int, 2019, 2019: 7165406. doi:10.1155/2019/7165406.
[30] Rodrigues D, Monteiro C, Cardoso-Cruz H, et al. Altered brain expression of DNA methylation and hydroxymethylation epigenetic enzymes in a rat model of neuropathic pain[J]. Int J Mol Sci, 2023, 24(8): 7305. doi:10.3390/ijms24087305.
[31] Jiang BC, Ding TY, Guo CY, et al. NFAT1 orchestrates spinal microglial transcription and promotes microglial proliferation via c-MYC contributing to nerve injury-induced neuropathic pain[J]. Adv Sci(Weinh), 2022, 9(27): e2201300. doi:10.1002/advs.202201300.
[32] Mi Y, Gao X, Dai J, et al. A novel function of TET2 in CNS: sustaining neuronal survival[J]. Int J Mol Sci, 2015, 16(9): 21846-21857.
[33] Xia M, Yan R, Wang W, et al. GID complex regulates the differentiation of neural stem cells by destabilizing TET2[J]. Front Med, 2023, 17(6): 1204-1218.
[34] Zhang Q, Zhao K, Shen QC, et al. Tet2 is required to resolve inflammation by recruiting Hdac2 to specifically repress IL-6[J]. Nature, 2015, 525: 389-393. doi:10.1038/nature15252.
[35] Hassan N, Ali A, Withycombe C, et al. TET-2 up-regulation is associated with the anti-inflammatory action of Vicenin-2[J]. Cytokine, 2018, 108: 37-42. doi:10.1016/j.cyto.
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