Clinical Research

Expression of miR⁃34c and miR⁃29b in peripheral blood of patients with sensorineural deafness and clinical significance

  • Ying LI ,
  • Yan LUO ,
  • Wenquan LI ,
  • Weifeng. LUO
Expand
  • *.Department of Otorhinolaryngology,the Second Affiliated Hospital of Soochow University,Suzhou 215000,China

Received date: 2024-03-07

  Online published: 2024-07-30

Abstract

Objective To investigate the expression and clinical significance of miR-34c and miR-29b in peripheral blood of patients with sensorineural hearing loss. Methods 140 patients with neurological deafness admitted to our hospital from June 2020 to June 2023 were included in the study group, and 40 healthy subjects were included in the control group during the same period. SNHL patients were categorized into 63 cases in the mildly deaf group, 42 cases in the moderately deaf group, and 35 cases in the severely deaf group according to their hearing impairment. The expressions of miR-34c and miR-29b were detected by qRT-PCR, and VEGF, oxidative stress (TAC, SOD, MDA), NO and Cx26 were detected. Correlation analysis was performed by Pearson test, independent risk factors for SNHL severity were calculated by logistics regression algorithm, and the predictive value of miR-34c and miR-29b on the severity of SNHL patients was evaluated by ROC curve. Results Comparing the levels of NO, TAC, SOD, and Cx26 among the four groups, severe deafness group < moderate deafness group < mild deafness group < control group (P < 0.05); comparing the levels of VEGF and MDA, severe deafness group > moderate deafness group > mild deafness group > control group (P < 0.05). Comparison of miR-34c mRNA and miR-29b mRNA expression levels among the four groups, severe deafness group > moderate deafness group > mild deafness group > control group (P < 0.05). Pearson's test showed that SNHL patients' peripheral blood miR-34c and miR-29b were positively correlated with VEGF and MDA, and were negatively correlated with NO, TAC, SOD and Cx26 (P < 0.05). negative correlation (P < 0.05). Multifactorial logistic regression analysis showed that VEGF, MDA, NO, Cx26, TAC, SOD, miR-34c, miR-29b were independent factors affecting the severity of SNHL. Conclusion miR-34c and miR-29b are overexpressed in SNHL patients and can be used as serum markers for predictive assessment of disease severity in SNHL patients.

Cite this article

Ying LI , Yan LUO , Wenquan LI , Weifeng. LUO . Expression of miR⁃34c and miR⁃29b in peripheral blood of patients with sensorineural deafness and clinical significance[J]. The Journal of Practical Medicine, 2024 , 40(15) : 2105 -2109 . DOI: 10.3969/j.issn.1006-5725.2024.15.010

References

1 阳彦,刘艳秋,罗海艳,等. 6957例新生儿听力筛查联合耳聋基因检测结果分析[J]. 实用医学杂志, 2020, 36(14):1952-1957.
2 YANG M, XU L, XU C, et al. The Mutations and Clinical Variability in Maternally Inherited Diabetes and Deafness: An Analysis of 161 Patients[J]. Front Endocrinol (Lausanne), 2021, 25(12):728043.
3 FRANZ L, GALLO C, MARIONI G, et al. Idiopathic Sudden Sensorineural Hearing Loss in Children: A Systematic Review and Meta-analysis[J]. Otolaryngol Head Neck Surg, 2021, 165(2):244-254. doi:10.1177/0194599820976571
4 SHI X, WANG Z, REN W, et al. LDL receptor-related protein 1 (LRP1), a novel target for opening the blood-labyrinth barrier (BLB)[J]. Signal Transduct Target Ther, 2022, 7(1):175. doi:10.1038/s41392-022-00995-z
5 AVRAHAM K B, KHALAILY L, NOY Y, et al. The noncoding genome and hearing loss[J]. Hum Genet, 2022, 141(3-4):323-333. doi:10.1007/s00439-021-02359-z
6 GENTILE G, PACIELLO F, ZORZI V, et al. miRNA and mRNA Profiling Links Connexin Deficiency to Deafness via Early Oxidative Damage in the Mouse Stria Vascularis[J]. Front Cell Dev Biol, 2021, 25(8):616878. doi:10.3389/fcell.2020.616878
7 中国耳聋基因筛查与诊断临床多中心研究协作组,中华耳鼻咽喉头颈外科杂志编辑委员会,中华医学会耳鼻咽喉头颈外科学分会. 中国耳聋基因诊断与遗传咨询临床实践指南(2023)[J]. 中华耳鼻咽喉头颈外科杂志,2023,58(1):3-14. doi:10.3760/cma.j.cn115330-20220609-00342
8 HOSOYA M, KITAMA T, IWABU K, et al. Development of the stria vascularis in the common marmoset, a primate model[J]. Sci Rep, 2022, 12(1):19811. doi:10.1038/s41598-022-24380-6
9 CHEN L J, WANG L, CHEN L, et al. Transcript Profiles of Stria Vascularis in Models of Waardenburg Syndrome[J]. Neural Plast, 2020, 2020:2908182. doi:10.1155/2020/2908182
10 KATAT A AL, ZHAO J, CALDERONE A,et al. Sympathetic Stimulation Upregulates the Ca2+ Channel Subunit, CaVα2δ1, via the β1 and ERK 1/2 Pathway in Neonatal Ventricular Cardiomyocytes[J]. Cells, 2022, 11(2):188. doi:10.3390/cells11020188
11 LIU L M, LIANG C, CHEN J, et al. Cx26 heterozygous mutations cause hyperacusis-like hearing oversensitivity and increase susceptibility to noise[J]. Sci Adv, 2023, 9(6):eadf4144. doi:10.1126/sciadv.adf4144
12 栾峰,张燕,陈旭真,等. 缝隙连接蛋白26和30在大鼠2型糖尿病性耳聋模型中的表达[J]. 解剖学报,2022,53(1):108-113. doi:10.16098/j.issn.0529-1356.2022.01.015
13 KANG H J, KANG W S, HONG M H, et al. Involvement of miR-34c in high glucose-insulted mesenchymal stem cells leads to inefficient therapeutic effect on myocardial infarction[J]. Cell Signal, 2015, 27(11):2241-2251. doi:10.1016/j.cellsig.2015.07.024
14 FALQUETTO B, THIEME K, MALTA M B, et al. Oxidative stress in the medullary respiratory neurons contributes to respiratory dysfunction in the 6-OHDA model of Parkinson's disease[J]. J Physiol, 2020, 598(22):5271-5293. doi:10.1113/jp279791
15 YANG S, DONG F, LI D, et al. Persistent distention of colon damages interstitial cells of Cajal through Ca2+ -ERK-AP-1-miR-34c-SCF deregulation[J]. J Cell Mol Med, 2017, 21(9):1881-1892. doi:10.1111/jcmm.13108
16 BABICHEVA A, AYON R J, ZHAO T, et al. MicroRNA-mediated downregulation of K+ channels in pulmonary arterial hypertension[J]. Am J Physiol Lung Cell Mol Physiol, 2020, 318(1):L10-L26. doi:10.1152/ajplung.00010.2019
17 ZOU J, LIU K C, WANG W P, et al. Circular RNA COL1A2 promotes angiogenesis via regulating miR-29b/VEGF axis in diabetic retinopathy[J]. Life Sci, 2020, 256:117888. doi:10.1016/j.lfs.2020.117888
18 MA Y H, DENG W J, LUO Z Y, et al. Inhibition of microRNA-29b suppresses oxidative stress and reduces apoptosis in ischemic stroke[J]. Neural Regen Res, 2022, 17(2):433-439. doi:10.4103/1673-5374.314319
19 ZHANG J, HOU Z, WANG X, et al. VEGFA165 gene therapy ameliorates blood-labyrinth barrier breakdown and hearing loss[J]. JCI Insight, 2021, 6(8):e143285. doi:10.1172/jci.insight.143285
20 NIAN H, DING S, FENG Y, et al. Effect of Noise and Music on Neurotransmitters in the Amygdala: The Role Auditory Stimuli Play in Emotion Regulation[J]. Metabolites, 2023, 13(8):928. doi:10.3390/metabo13080928
21 BORTOLOZZI M, MAMMANO F. PMCA2 pump mutations and hereditary deafness[J]. Neurosci Lett, 2018, 663:18-24. doi:10.1016/j.neulet.2017.09.059
22 WAN W F, ZHANG X, HUANG C R, et al. miR-34c inhibits PDGF-BB-induced HAVSMCs phenotypic transformation and proliferation via PDGFR-β/SIRT1 pathway[J]. Mol Biol Rep, 2021, 48(5):4137-4151. doi:10.1007/s11033-021-06427-5
23 LI B, LIU J, XIN X, et al. MiR-34c promotes hepatic stellate cell activation and Liver Fibrogenesis by suppressing ACSL1 expression[J]. Int J Med Sci, 2021, 18(3):615-625. doi:10.7150/ijms.51589
24 GRASSILLI S, BERTAGNOLO V, BRUGNOLI F. Mir-29b in Breast Cancer: A Promising Target for Therapeutic Approaches[J]. Diagnostics (Basel), 2022, 12(9):2139. doi:10.3390/diagnostics12092139
25 DIENER C, KELLER A, MEESE E. Emerging concepts of miRNA therapeutics: from cells to clinic[J]. Trends Genet, 2022, 38(6):613-626. doi:10.1016/j.tig.2022.02.006
Outlines

/