收稿日期: 2024-01-08
网络出版日期: 2024-08-26
基金资助
云南省兴滇英才支持计划名医项目(XDYC- MY-2022-0057);昆明医科大学中青年学科带头人及后备人选-“乘风”人才培养计划(2023(108)┣2023S328)
Research progress of m6A modification in benign ovarian related diseases
Received date: 2024-01-08
Online published: 2024-08-26
吴妍芝 , 刘洋 . m6A修饰在良性卵巢相关疾病的研究进展[J]. 实用医学杂志, 2024 , 40(16) : 2352 -2356 . DOI: 10.3969/j.issn.1006-5725.2024.16.024
N6-methyladenine (m6A) modification is involved in a variety of biological processes and dynamically regulates RNA stability. When m6A modification is changed, it affects the development of follicles, granulosa cell proliferation and oocyte development, and participates in the occurrence and development of benign ovaria-related diseases, such as polycystic ovary syndrome, premature ovarian dysfunction, and endometriosis, resulting in decreased female fertility. This article reviews the role and research progress of m6A modification in benign ovaria-related diseases, aiming to provide new diagnosis and treatment ideas for subsequent research on improving fertility.
| 1 | SENDINC E, SHI Y. RNA m6A methylation across the transcriptome[J]. Mol Cell, 2023, 83(3): 428-441. doi:10.1016/j.molcel.2023.01.006 |
| 2 | HUANG E, CHEN L. RNA N6-methyladenosine modification in female reproductive biology and pathophysiology[J]. Cell Commun Signal, 2023, 21(1): 53. doi:10.1186/s12964-023-01078-4 |
| 3 | SUN X, ZHANG Y, HU Y, et al. Decreased expression of m6A demethylase FTO in ovarian aging[J]. Arch Gynecol Obstet, 2021, 303(5): 1363-1369. doi:10.1007/s00404-020-05895-7 |
| 4 | 王焓,段萍. 脂肪和肥胖相关基因通过TLR2/p38信号通路促进异位子宫内膜间质细胞纤维化[J]. 温州医科大学学报, 2022,52(3): 180-185+193. |
| 5 | JING Y X, LI H X, YUE F, et al. N6-methyladenosine demethylase FTO related to hyperandrogenism in PCOS via AKT pathway[J]. Gynecol Endocrinol, 2023, 39(1): 2276167. doi:10.1080/09513590.2023.2276167 |
| 6 | 唐立丽,王昕宇,张杰,等. m6A甲基化修饰在急性肾损伤中的研究进展[J]. 实用医学杂志, 2024,40(2): 278-282. |
| 7 | 钱晓芬,曾平,刘金富,等. m6A RNA甲基化修饰相关酶的研究进展[J]. 中国免疫学杂志, 2023,39(5): 1073-1084. |
| 8 | 邹菊红,黄艳娜,蒋钦杨. RNA N6-腺苷酸甲基化修饰及其生物学功能[J]. 中国畜牧兽医, 2021,48(4): 1196-1203. |
| 9 | JIANG X, LIU B, NIE Z, et al. The role of m6A modification in the biological functions and diseases[J]. Signal Transduct Target Ther, 2021, 6(1): 74. doi:10.1038/s41392-020-00450-x |
| 10 | SHEN D, WANG B, GAO Y, et al. Detailed resume of RNA m6A demethylases[J]. Acta Pharmaceut Sin B, 2022, 12(5): 2193-2205. doi:10.1016/j.apsb.2022.01.003 |
| 11 | 彭佳欣,张自辉,洪莉. m6A修饰在卵巢癌中的研究进展[J]. 实用医学杂志, 2023,39(12): 1577-1583. doi:10.3969/j.issn.1006-5725.2023.12.020 |
| 12 | ZACCARA S, RIES R J, JAFFREY S R. Reading, writing and erasing mRNA methylation[J]. Nature Rev Mol Cell Biol, 2019, 20(10): 608-624. doi:10.1038/s41580-019-0168-5 |
| 13 | BOULIAS K, GREER E L. Biological roles of adenine methylation in RNA[J]. Nature Rev Gen, 2023, 24(3): 143-160. doi:10.1038/s41576-022-00534-0 |
| 14 | DENG K, NING X, REN X, et al. Transcriptome-wide N6-methyladenosine methylation landscape of coronary artery disease[J]. Epigenomics, 2021, 13(10): 793-808. doi:10.2217/epi-2020-0372 |
| 15 | ZHAO S, ZHANG B, YUAN H, et al. IGF2BP2 promotes the progression of ovarian endometriosis by regulating m6A-modified MEIS2 and GATA6[J]. Int J Biochem Cell Biol, 2022, 152: 106296. doi:10.1016/j.biocel.2022.106296 |
| 16 | YANG K, SUN J, ZHANG Z, et al. Reduction of mRNA m6A associates with glucose metabolism via YTHDC1 in human and mice[J]. Diab Res Clin Pract, 2023, 198: 110607. doi:10.1016/j.diabres.2023.110607 |
| 17 | LIU N, PARISIEN M, DAI Q, et al. Probing N6-methyladenosine RNA modification status at single nucleotide resolution in mRNA and long noncoding RNA[J]. RNA, 2013, 19(12): 1848-1856. doi:10.1261/rna.041178.113 |
| 18 | XUE A, HUANG Y, LI M, et al. Comprehensive Analysis of Differential m6A RNA Methylomes in the Hippocampus of Cocaine-Conditioned Mice[J]. Mol Neurobiol, 2021, 58(8): 3759-3768. doi:10.1007/s12035-021-02363-4 |
| 19 | LINDER B, GROZHIK A V, OLARERIN-GEORGE A O, et al. Single-nucleotide-resolution mapping of m6A and m6Am throughout the transcriptome[J]. Nat Methods, 2015, 12(8): 767-772. doi:10.1038/nmeth.3453 |
| 20 | ZHANG Z, CHEN L Q, ZHAO Y L, et al. Single-base mapping of m6A by an antibody-independent method[J]. Sci Adv, 2019, 5(7): eaax0250. doi:10.1126/sciadv.aax0250 |
| 21 | HU L, LIU S, PENG Y, et al. m6A RNA modifications are measured at single-base resolution across the mammalian transcriptome[J]. Nat Biotechnol, 2022, 40(8): 1210-1219. doi:10.1038/s41587-022-01243-z |
| 22 | CARSON S A, KALLEN A N. Diagnosis and Management of Infertility: A Review[J]. JAMA, 2021, 326(1): 65. doi:10.1001/jama.2021.4788 |
| 23 | GENG X, ZHAO J, HUANG J, et al. lnc-MAP3K13-7:1 Inhibits Ovarian GC Proliferation in PCOS via DNMT1 Downregulation-Mediated CDKN1A Promoter Hypomethylation[J]. Mol Ther, 2021, 29(3): 1279-1293. doi:10.1016/j.ymthe.2020.11.018 |
| 24 | MU H, ZHANG T, YANG Y, et al. METTL3-mediated mRNA N6-methyladenosine is required for oocyte and follicle development in mice[J]. Cell Death Dis, 2021, 12(11): 989. doi:10.1038/s41419-021-04272-9 |
| 25 | ZHANG S, DENG W, LIU Q, et al. Altered m6 A modification is involved in up-regulated expression of FOXO3 in luteinized granulosa cells of non-obese polycystic ovary syndrome patients[J]. J Cell Mol Med, 2020, 24(20): 11874-11882. doi:10.1111/jcmm.15807 |
| 26 | ZHOU L, HAN X, LI W, et al. N6-methyladenosine Demethylase FTO Induces the Dysfunctions of Ovarian Granulosa Cells by Upregulating Flotillin 2[J]. Reprod Sci, 2022, 29(4): 1305-1315. doi:10.1007/s43032-021-00664-6 |
| 27 | ZHANG Y, ZHOU H, DING C. The ameliorative effect of CangFu Daotan Decoction on polycystic ovary syndrome of rodent model is associated with m6A methylation and Wnt/β-catenin pathway[J]. Gynecol Endocrinol, 2023, 39(1): 2181637. doi:10.1080/09513590.2023.2181637 |
| 28 | 陈蓉,罗敏. 早发性卵巢功能不全的相关术语[J]. 中国实用妇科与产科杂志, 2023,39(9): 869-871. |
| 29 | ZHANG J, YAN L, WANG Y, et al. In vivo and in vitro activation of dormant primordial follicles by EGF treatment in mouse and human[J]. Clin Translat Med, 2020, 10(5): e182. doi:10.1002/ctm2.182 |
| 30 | HUANG B, DING C, ZOU Q, et al. Cyclophosphamide Regulates N6-Methyladenosine and m6A RNA Enzyme Levels in Human Granulosa Cells and in Ovaries of a Premature Ovarian Aging Mouse Model[J]. Front Endocrinol, 2019, 10: 415. doi:10.3389/fendo.2019.00415 |
| 31 | McGLACKEN-BYRNE S M, DEL VALLE I, QUESNE STABEJ P L, et al. Pathogenic variants in the human m6A reader YTHDC2 are associated with primary ovarian insufficiency[J]. JCI Insight, 2022, 7(5): e154671. doi:10.1172/jci.insight.154671 |
| 32 | HU Y, OUYANG Z, SUI X, et al. Oocyte competence is maintained by m6A methyltransferase KIAA1429-mediated RNA metabolism during mouse follicular development[J]. Cell Death Differ, 2020, 27(8): 2468-2483. doi:10.1038/s41418-020-0516-1 |
| 33 | LI Y, LI M, LIU J, et al. Altered m6A modification is involved YAP-mediated apoptosis response in 4-vinylcyclohexene diepoxide induced ovotoxicity[J]. Ecotoxicol Environm Safety, 2023, 262: 115192. doi:10.1016/j.ecoenv.2023.115192 |
| 34 | ZHAO Y, SHI Y, SHEN H, et al. m6A-binding proteins: the emerging crucial performers in epigenetics[J]. J Hematol Oncol, 2020, 13(1): 35. doi:10.1186/s13045-020-00872-8 |
| 35 | BECKER C M, BOKOR A, HEIKINHEIMO O, et al. ESHRE guideline: endometriosis[J]. Human Reprod Open, 2022, 2022(2): hoac009. doi:10.1093/hropen/hoac009 |
| 36 | 冷金花,李晓燕. 子宫内膜异位症诊治中有争议的几个问题[J]. 中国实用妇科与产科杂志, 2021,37(3): 273-276. |
| 37 | WARZECHA D, SZYMUSIK I, WIELGOS M, et al. The Impact of Endometriosis on the Quality of Life and the Incidence of Depression-A Cohort Study[J]. Int J Environm Res Public Health, 2020, 17(10): 3641. doi:10.3390/ijerph17103641 |
| 38 | MATHIYALAGAN P, ADAMIAK M, MAYOURIAN J, et al. FTO-Dependent N6-Methyladenosine Regulates Cardiac Function During Remodeling and Repair[J]. Circulation, 2019, 139(4): 518-532. doi:10.1161/circulationaha.118.033794 |
| 39 | LI T, ZHUANG Y, YANG W, et al. Silencing of METTL3 attenuates cardiac fibrosis induced by myocardial infarction via inhibiting the activation of cardiac fibroblasts[J]. FASEB J, 2021, 35(2):e21162. doi:10.1096/fj.201903169r |
| 40 | LI X, XIONG W, LONG X, et al. Inhibition of METTL3/m6A/miR126 promotes the migration and invasion of endometrial stromal cells in endometriosis[J]. Biol Reproduct, 2021, 105(5): 1221-1233. doi:10.1093/biolre/ioab152 |
| 41 | ZHANG Q. METTL3 is aberrantly expressed in endometriosis and suppresses proliferation, invasion, and migration of endometrial stromal cells[J]. Kaohsiung J Med Sci, 2023, 39(3): 266-277. doi:10.1002/kjm2.12626 |
| 42 | WANG X, WANG J, ZHAO X, et al. METTL3-mediated m6A modification of SIRT1 mRNA inhibits progression of endometriosis by cellular senescence enhancing[J]. J Translat Med, 2023, 21(1): 407. doi:10.1186/s12967-023-04209-0 |
| 43 | SHEN L, ZHANG C, ZHANG Y, et al. METTL3 and METTL14-mediated N6-methyladenosine modification promotes cell proliferation and invasion in a model of endometriosis[J]. Reprod Biomed Online, 2023, 46(2): 255-265. doi:10.1016/j.rbmo.2022.10.010 |
| 44 | WANG H, LIANG Z, GOU Y, et al. FTO-dependent N(6)-Methyladenosine regulates the progression of endometriosis via the ATG5/PKM2 Axis[J]. Cell Signal, 2022, 98: 110406. doi:10.1016/j.cellsig.2022.110406 |
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