[1] |
李妮, 王榆平, 任娟娟, 等. 基于年龄-时期-队列模型分析1990—2019年中国妇科疾病负担趋势[J]. 国际妇产科学杂志, 2024, 51(2):142-147. doi: 10.12280/gjfckx.20230946.
|
[2] |
Jakubowska-Kowal KM, Skrzynska KJ, Gawlik-Starzyk AM. Prevalence and diagnosis of polycystic ovary syndrome (PCOS) in adolescents - what′s new in 2023? Systematic review[J]. Ginekol Pol, 2024, 95(8):643-649. doi: 10.5603/gpl.98849.
|
[3] |
Ji X, Ye Y, Wang L, et al. PDE4 inhibitor Roflumilast modulates inflammation and lipid accumulation in PCOS mice to improve ovarian function and reduce DHEA-induced granulosa cell apoptosis in vitro[J]. Drug Dev Res, 2023, 84(2):226-237. doi: 10.1002/ddr.22027.
|
[4] |
高慧慧, 钱贝冉, 倪艳, 等. 多囊卵巢综合征发病机制研究进展[J]. 四川大学学报(医学版), 2024, 55(4):1049-1054. doi: 10.12182/20240760208.
|
[5] |
Li M, Chi X, Wang Y, et al. Trends in insulin resistance: insights into mechanisms and therapeutic strategy[J]. Signal Transduct Target Ther, 2022, 7(1):216. doi: 10.1038/s41392-022-01073-0.
|
[6] |
乔娜, 田英, 陈杨, 等. LncRNA MALAT1对PCOS颗粒细胞凋亡、自噬和PI3K/Akt/mTOR通路的影响[J]. 天津医药, 2024, 52(10):1020-1024. doi: 10.11958/20240332.
|
[7] |
Teede HJ, Tay CT, Laven J, et al. Recommendations from the 2023 International Evidence-based Guideline for the Assessment and Management of Polycystic Ovary Syndrome[J]. Fertil Steril, 2023, 120(4):767-793. doi: 10.1016/j.fertnstert.2023.07.025.
pmid: 37589624
|
[8] |
Noroozzadeh M, Salehi Jahromi M, Gholami H, et al. Ovarian expression of follicle stimulating hormone and activin receptors genes in a prenatally-androgenized rat model of polycystic ovary syndrome in adulthood[J]. Mol Biol Rep, 2022, 49(8):7765-7771. doi: 10.1007/s11033-022-07601-z.
pmid: 35668149
|
[9] |
Salehi R, Mazier HL, Nivet AL, et al. Ovarian mitochondrial dynamics and cell fate regulation in an androgen-induced rat model of polycystic ovarian syndrome[J]. Sci Rep, 2020, 10(1):1021. doi: 10.1038/s41598-020-57672-w.
pmid: 31974436
|
[10] |
翟怡, 庞艳莉. 高雄激素诱导小鼠颗粒细胞氧化应激与炎症的研究[J]. 中国生育健康杂志, 2024, 35(2):122-128. doi: 10.3969/j.issn.1671-878X.2024.02.004.
|
[11] |
常瑞亚, 石拴霞, 王纪田, 等. 氧化应激在女性生殖功能损伤中的研究进展[J]. 河北医药, 2024, 46(9):1407-1411. doi: 10.3969/j.issn.1002-7386.2024.09.028.
|
[12] |
Yan F, Zhao Q, Li Y, et al. The role of oxidative stress in ovarian aging: a review[J]. J Ovarian Res, 2022, 15(1):100. doi: 10.1186/s13048-022-01032-x.
pmid: 36050696
|
[13] |
Ma Y, Zheng L, Wang Y, et al. Arachidonic Acid in Follicular Fluid of PCOS Induces Oxidative Stress in a Human Ovarian Granulosa Tumor Cell Line (KGN) and Upregulates GDF15 Expression as a Response[J]. Front Endocrinol(Lausanne), 2022, 13:865748. doi: 10.3389/fendo.2022.865748.
|
[14] |
Zhang Q, Ren J, Wang F, et al. Mitochondrial and glucose metabolic dysfunctions in granulosa cells induce impaired oocytes of polycystic ovary syndrome through Sirtuin 3[J]. Free Radic Biol Med, 2022, 187:1-16. doi: 10.1016/j.freeradbiomed.2022.05.010.
|
[15] |
Kelly CC, Lyall H, Petrie JR, et al. Low grade chronic inflammation in women with polycystic ovarian syndrome[J]. J Clin Endocrinol Metab, 2001, 86(6):2453-2455. doi: 10.1210/jcem.86.6.7580.
|
[16] |
Rostamtabar M, Esmaeilzadeh S, Tourani M, et al. Pathophysiological roles of chronic low-grade inflammation mediators in polycystic ovary syndrome[J]. J Cell Physiol, 2021, 236(2):824-838. doi: 10.1002/jcp.29912.
|
[17] |
Schüler-Toprak S, Ortmann O, Buechler C, et al. The Complex Roles of Adipokines in Polycystic Ovary Syndrome and Endometriosis[J]. Biomedicines, 2022, 10(10):2503. doi: 10.3390/biomedicines10102503.
|
[18] |
Cao M, Zhao Y, Chen T, et al. Adipose mesenchymal stem cell-derived exosomal microRNAs ameliorate polycystic ovary syndrome by protecting against metabolic disturbances[J]. Biomaterials, 2022, 288:121739. doi: 10.1016/j.biomaterials.2022.121739.
|
[19] |
Liang Y, Xu ML, Gao X, et al. Resveratrol improves ovarian state by inhibiting apoptosis of granulosa cells[J]. Gynecol Endocrinol, 2023, 39(1):2181652. doi: 10.1080/09513590.2023.2181652.
|
[20] |
Zhang Y, Wang L, Weng Y, et al. Curcumin Inhibits Hyperandrogen-Induced IRE1α-XBP1 Pathway Activation by Activating the PI3K/AKT Signaling in Ovarian Granulosa Cells of PCOS Model Rats[J]. Oxid Med Cell Longev, 2022, 2022:2113293. doi: 10.1155/2022/2113293.
|
[21] |
张韵函, 谢盛言, 何珊珊. 姜黄素可缓解多囊卵巢综合征大鼠卵巢炎症状态并改善其功能[J]. 现代免疫学, 2021, 41(6):481-486.
|
[22] |
吕向阳, 任晓爽, 张良, 等. 柚皮素下调RIP1-RIP3-MLKL信号通路抑制多囊卵巢综合征大鼠卵巢颗粒细胞凋亡[J]. 中国药理学通报, 2024, 40(3):483-489. doi: 10.12360/CPB202310037.
|
[23] |
范宏芳, 王孜涵, 王莉, 等. 黄芩苷对多囊卵巢综合征大鼠颗粒细胞增殖和凋亡的影响[J]. 西北药学杂志, 2024, 39(1):66-71. doi: 10.3969/j.issn.1004-2407.2024.01.011.
|
[24] |
徐琼芳, 钟斐, 李子帅. 淫羊藿苷调节SDF-1/CXCR4信号通路对多囊卵巢综合征大鼠卵巢颗粒细胞凋亡的影响[J]. 天津医药, 2024, 52(7):727-732. doi: 10.11958/20231504.
|
[25] |
江雪娟, 陈晓菲, 俞佳, 等. 槲皮素对多囊卵巢综合征大鼠卵巢颗粒细胞增殖与凋亡的影响研究[J]. 浙江中医药大学学报, 2022, 46(10):1055-1062,1069. doi: 10.16466/j.issn1005-5509.2022.10.001.
|
[26] |
尹和芳, 吴萍, 胡礼建. 益母草碱调节RhoA/ROCK信号通路对多囊卵巢综合征大鼠卵巢颗粒细胞自噬和凋亡的影响[J]. 中国优生与遗传杂志, 2023, 31(11):2199-2205. doi: 10.13404/j.cnki.cjbhh.2023.11.017.
|
[27] |
Kuang H, Duan Y, Li D, et al. The role of serum inflammatory cytokines and berberine in the insulin signaling pathway among women with polycystic ovary syndrome[J]. PLoS One, 2020, 15(8):e0235404. doi: 10.1371/journal.pone.0235404.
|
[28] |
刘冷, 贺春花. 黄芪甲苷对肥胖型多囊卵巢综合征大鼠胰岛素抵抗及MAPK/ERK通路的影响[J]. 中成药, 2024, 46(1):94-100. doi: 10.3969/j.issn.1001-1528.2024.01.016.
|
[29] |
房丽娜, 李妍仪, 董超, 等. 毛兰素对多囊卵巢综合征大鼠卵巢颗粒细胞凋亡的影响及机制[J]. 中国药房, 2024, 35(11):1339-1344. doi: 10.6039/j.issn.1001-0408.2024.11.10.
|