[1] Yuan LJ,Ren JX,Ji HY,et al. Expression of transforming growth factor-β and Smad4 in ovarian granulosa cells in menopausal transitional rat [J]. Acta Anatomica Sinica,2018, 49(1): 108-112.(in Chinese)
袁丽娟, 任君旭, 姬宏宇, 等. 转化生长因子-β和Smad4在绝经过渡期大鼠卵巢颗粒细胞中的表达[J]. 解剖学报, 2018, 49(1): 108-112.
[2] Gleicher N, Barad DH. Dehydroepiandrosterone (DHEA) supplementation in diminished ovarian reserve (DOR)[J]. Reprod Biol Endocrinol, 2011, 9: 67.
[3] Panjari M,Davis SR. DHEA therapy for women:effect on sexual function and wellbeing [J]. Hum Reprod Update,2007(3): 239-248.
[4] Narkwichean A, Jayaprakasan K, Maalouf WE, et al. Effects of dehydroepiandrosterone on in vivo ovine follicular development[J]. Hum Reprod, 2014, 29(1): 146-154.
[5] Abbott DH, Vepraskas SH, Horton TH, et al. Accelerated episodic luteinizing hormone release accompanies blunted progesterone regulation in PCOS-like female rhesus monkeys (Macaca Mulatta) exposed to testosterone during early-to-mid gestation[J]. Neuroendocrinology, 2018, 107(2): 133-146.
[6] Roy S, Gandra D, Seger C, et al. Oocyte-derived factors (GDF9 and BMP15) and FSH regulate AMH expression via modulation of H3K27AC in granulosa cells[J]. Endocrinology, 2018, 159(9): 3433-3445.
[7] Witchel SF, Burghard AC, Tao RH, et al. The diagnosis and treatment of PCOS in adolescents: an update[J]. Curr Opin Pediatr, 2019, 31(4): 562-569.
[8] Zhang Y, Wang SF, Zheng JD, et al. Effects of testosterone on the expression levels of AMH, VEGF and HIF-1alpha in mouse granulosa cells[J]. Exp Ther Med, 2016, 12(2): 883-888.
[9] Laird M, Thomson K, Fenwick M, et al. Androgen stimulates growth of mouse preantral follicles in vitro: interaction with follicle-stimulating hormone and with growth factors of the TGFbeta superfamily[J]. Endocrinology, 2017, 158(4): 920-935.
[10] Pierre A, Estienne A, Racine C, et al. The bone morphogenetic protein 15 up-regulates the antimullerian hormone receptor expression in granulosa cells[J]. J Clin Endocrinol Metab, 2016, 101(6): 2602-2611.
[11] Lovekamp TN, Davis BJ. Mono-(2-ethylhexyl) phthalate suppresses aromatase transcript levels and estradiol production in cultured rat granulosa cells[J]. Toxicol Appl Pharmacol, 2001, 172(3): 217-224.
[12] Pinola P, Morin-Papunen LC, Bloigu A, et al. Anti-Müllerian hormone: correlation with testosterone and oligo- or amenorrhoea in female adolescence in a population-based cohort study[J]. Hum Reprod, 2014, 29(10): 2317-2325.
[13] Filatov M, Khramova Y, Parshina E, et al. Influence of gonadotropins on ovarian follicle growth and development in vivo and in vitro[J]. Zygote, 2017, 25(3): 235-243.
[14] Yang MY, Cushman RA, Fortune JE. Anti-Müllerian hormone inhibits activation and growth of bovine ovarian follicles in vitro and is localized to growing follicles[J]. Mol Hum Reprod, 2017, 23(5): 282-291.
[15] Xiang C, Li J, Hu L, et al. Hippo signaling pathway reveals a spatio-temporal correlation with the size of primordial follicle pool in mice[J]. Cell Physiol Biochem, 2015, 35(3): 957-968.
[16] Sonigo C, Beau Ⅰ, Grynberg M, et al. AMH prevents primordial ovarian follicle loss and fertility alteration in cyclophosphamide-treated mice[J]. FASEB J, 2019, 33(1): 1278-1287.
[17] Yin O, Cayton K, Segars JH. In vitro activation: a dip into the primordial follicle pool[J]? J Clin Endocrinol Metab, 2016, 101(10): 3568-3570.
[18] Lee HN, Chang EM. Primordial follicle activation as new treatment for primary ovarian insufficiency[J]. Clin Exp Reprod Med, 2019, 46(2): 43-49.
[19] Broer SL, Broekmans FJ, Laven JS, et al. AntiMüllerian hormone: ovarian reserve testing and its potential clinical implications[J]. Hum Reprod Update, 2014, 20(5): 688-701.
[20] Polyzos NP, Davis SR, Drakopoulos P, et al. Testosterone for poor ovarian responders: lessons from ovarian physiology[J]. Reprod Sci, 2018, 25(7): 980-982.
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