[1] Liu X, Zhang J, Wang Sh. Global, regional, and national burden of infertility attributable to PCOS, 1990–2019. Hum Reprod 2024; 39: 108–118.
[2] Andone B-A, Handrea-Dragan IM, Botiz I, Boca S. State-of-the-art and future perspectives in infertility diagnosis: Conventional versus nanotechnology-based assays. Nanomedicine 2023; 54: 102709.
[3] Graham ME, Jelin A, Hoon Jr AH, Wilms Floet AM, Levey E, Graham EM. Assisted reproductive technology: Short-and long-term outcomes. Dev Med Child Neurol 2023; 65: 38–49.
[4] Bahrami F, Dashti S, Mangoli E, Hosseini HS. Does body mass index compromise assisted reproductive technique outcomes? A cross-sectional study. Int J Reprod BioMed 2023; 21: 1021–1030.
[5] Teklemicheal AG, Kassa EM, Weldetensaye EK. Prevalence and correlates of infertility related psychological stress in women with infertility: A cross-sectional hospital based survey. BMC Psychol 2022; 10: 91.
[6] Lazzari E, Potancoková M, Sobotka T, Gray E, Chambers GM. Projecting the contribution of assisted reproductive technology to completed cohort fertility. Popul Res Policy Rev 2023; 42: 6.
[7] Torkashvand H, Shabani R, Amiri I, Darakhshan R, Maleki B, Doostabadi MR, et al. Exploring the potential of in vitro maturation (ivm) of oocytes: Indications, applications, and treatment protocols. Avicenna J Med Biotechnol 2024; 16: 156–164.
[8] Adib M, Seifati SM, Dehghani Ashkezari M, Khoradmehr A, Rezaee-Ranjbar-Sardari R, Tahajjodi SS, et al. The effect of the human cumulus cells-conditioned medium on in vitro maturation of mouse oocyte: An experimental study. Int J Reprod BioMed 2020; 18: 1019–1028.
[9] Doroudi R, Changizi Z, Nematollahi-Mahani SN. Effects of melatonin and human follicular fluid supplementation of in vitro maturation medium on mouse vitrified germinal vesicle oocytes: A laboratory study. Int J Reprod BioMed 2021; 19: 889–898.
[10] Zargari S, Veladi H, Sadeghzadeh B, Shahabi P, Frounchi J. A microfluidic chip for in vitro oocyte maturation. Sensor Lett 2016; 14: 435–440.
[11] Adib M, Seifati SM, Ashkezari MD, Akyash F, Khoradmehr A, Aflatoonian B. Effect of human testicular cells conditioned medium on in vitro maturation and morphology of mouse oocytes. Int J Fertil Steril 2020; 14: 176–184.
[12] Weng L. IVF-on-a-chip: Recent advances in microfluidics technology for in vitro fertilization. SLAS Technol 2019; 24: 373–385.
[13] Sadeghzadeh Oskouei B, Pashaiasl M, Heidari MH, Salehi M, Veladi H, Pakdel FG, et al. Evaluation of mouse oocyte in vitro maturation developmental competency in dynamic culture systems by design and construction of a lab on a chip device and its comparison with conventional culture system. Cell J 2016; 18: 205–213.
[14] Torkashvand H, Fathi R, Shahverdi A, Golkar A, Mozdziak PE, Eimani H. The in vitro effect of chick embryo extract on mice pre-antral follicles. Vet Res Forum 2019; 10: 213–219.
[15] Budani MC, Tiboni GM. Effects of supplementation with natural antioxidants on oocytes and preimplantation embryos. Antioxidants 2020; 9: 612.
[16] Dang KN, Hashan MR, Minh LHN, Khalaf KM, Ibrahim HY, Dessi A, et al. Follicular fluid meiosis-activating sterol in assisted reproductive techniques: A systematic review and meta-analysis of randomized controlled trials. Fertil Reprod 2020; 2: 144–159.
[17] Liu Zh, Li Ch, Chen Q, Bai Ch, Wu G, Fu C, et al. FF-MAS prevents porcine ovarian granulosa cells from hypoxia-induced apoptosis via inhibiting STAT4 expression. J Anim Sci 2024; 102: skae125.
[18] Depalo R, Trerotoli P, Chincoli A, Vacca MP, Lamanna G, Cicinelli E. Endogenous luteinizing hormone concentration and IVF outcome during ovarian stimulation in fixed versus flexible GnRH antagonist protocols: An RCT. Int J Reprod BioMed 2018; 16: 175–182.
[19] Mastrorocco A, Cacopardo L, Temerario L, Martino NA, Tridente F, Rizzo A, et al. Investigating and modelling an engineered millifluidic in vitro oocyte maturation system reproducing the physiological ovary environment in the sheep model. Cells 2022; 11: 3611.
[20] Guo R, Wang X, Li Q, Sun X, Zhang J, Hao R. Follicular fluid meiosis-activating sterol (FF-MAS) promotes meiotic resumption via the MAPK pathway in porcine oocytes. Theriogenology 2020; 148: 186–193.
[21] Suarez SS. Gamete and zygote transport. In: Plant TM, Zeleznik AJ. Knobil Neill’s physiology of reproduction. 4th Ed. USA: Academic Press; 2015.
[22] Lierman S, De Sutter P, Dhont M, Van der Elst J. Double-quality control reveals high-level toxicity in gloves used for operator protection in assisted reproductive technology. Fertil Steril 2007; 88: 1266–1272.
[23] Heydari L, Khalili MA, Agha Rahimi A, Shakeri F. Human embryos derived from first polar body nuclear transfer exhibit comparatively abnormal morphokinetics during development. Clin Exp Reprod Med 2023; 50: 177–184.
[24] Guimarães RM, Ribeiro LM, Sasaki LP, Nakagawa HM, Cabral IO. Oocyte morphology and reproductive outcomes-case report and literature review. JBRA Assist Reprod 2021; 25: 500–507.
[25] Razi Y, Eftekhar M, Fesahat F, Dehghani Firouzabadi R, Razi N, Sabour M, et al. Concentrations of homocysteine in follicular fluid and embryo quality and oocyte maturity in infertile women: A prospective cohort. J Obstet Gynaecol 2021; 41: 588–593.
[26] Shirzeyli MH, Eini F, Shirzeyli FH, Majd SA, Ghahremani M, Joupari MD, et al. Assessment of mitochondrial function and developmental potential of mouse oocytes after mitoquinone supplementation during vitrification. J Am Assoc Lab Anim Sci 2021; 60: 388–395.
[27] Paccola CC, Souza GS, Freitas IMM, Souza JC, Martins LL, Vendramini V, et al. Does maternal exposure to nicotine affect the oocyte quality and reproductive capacity in adult offspring? Toxicol Appl Pharmacol 2021; 426: 115638.
[28] Cavilla JL, Kennedy CR, Baltsen M, Klentzeris LD, Byskov AG, Hartshorne GM. The effects of meiosis activating sterol on in-vitro maturation and fertilization of human oocytes from stimulated and unstimulated ovaries. Hum Reprod 2001; 16: 547–555.
[29] Marín Bivens CL, Grøndahl C, Murray A, Blume T, Su Y-Q, Eppig JJ. Meiosis-activating sterol promotes the metaphase I to metaphase II transition and preimplantation developmental competence of mouse oocytes maturing in vitro. Biol Reprod 2004; 70: 1458–1464.
[30] Kirillova A, Smitz JEJ, Sukhikh GT, Mazunin I. The role of mitochondria in oocyte maturation. Cells 2021; 10: 2484.
[31] He B, Yin C, Gong Y, Liu J, Guo H, Zhao R. Melatonin-induced increase of lipid droplets accumulation and in vitro maturation in porcine oocytes is mediated by mitochondrial quiescence. J Cell Physiol 2018; 233: 302–312.
[32] Ferrer-Vaquer A, Barragán M, Rodríguez A, Vassena R. Altered cytoplasmic maturation in rescued in vitro matured oocytes. Hum Reprod 2019; 34: 1095–1105.
[33] Lee I-W, Tazehkand AP, Sha Z-Y, Adhikari D, Carroll J. An aggregated mitochondrial distribution in preimplantation embryos disrupts nuclear morphology, function, and developmental potential. Proc Natl Acad Sci 2024; 121: e2317316121.
留言 (0)