Telfer EE, Andersen CY. In vitro growth and maturation of primordial follicles and immature oocytes. Fertil Steril. 2021;115(5):1116–25.
Yang Z-Y, Chian R-C. Development of in vitro maturation techniques for clinical applications. Fertil Steril. 2017;108(4):577–84.
Lee H-J, Barad DH, Kushnir VA, Shohat-Tal A, Lazzaroni-Tealdi E, Wu Y-G, et al. Rescue in vitro maturation (IVM) of immature oocytes in stimulated cycles in women with low functional ovarian reserve (LFOR). Endocrine. 2016;52:165–71.
Escrich L, Pellicer A, Meseguer M. Let's rescue oocytes: in vitro maturation 2.0 is coming. Fertil Steril. 2018;110(4):638–9.
Ho VN, Braam SC, Pham TD, Mol BW, Vuong LN. The effectiveness and safety of in vitro maturation of oocytes versus in vitro fertilization in women with a high antral follicle count. Hum Reprod. 2019;34(6):1055–64.
Yang Q, Zhu L, Jin L. Human follicle in vitro culture including activation, growth, and maturation: a review of research progress. Front Endocrinol. 2020;11:548.
Akdemir Y, Donmez Cakil Y, Selam B, Sitar ME, Cincik M. Rescue IVM of denuded GV-and MI-stage oocytes of premenopausal rats with oncostatin M, insulin-like growth factor I, and growth hormone. Life. 2022;12(8):1247.
PubMed PubMed Central CAS Google Scholar
Toori MA, Mosavi E, Nikseresht M, Barmak MJ, Mahmoudi R. Influence of insulin-like growth factor-i on maturation and fertilization rate of immature oocyte and embryo development in NMRI mouse with TCM199 and α-MEM medium. J Clin Diagn Res. 2014;8(12):AC05.
PubMed PubMed Central Google Scholar
Lorenzo P, Illera M, Illera J, Illera M. Enhancement of cumulus expansion and nuclear maturation during bovine oocyte maturation in vitro by the addition of epidermal growth factor and insulin-like growth factor I. J Reprod Fertil. 1994;101(3):697–701.
Sato A, Sarentonglaga B, Ogata K, Yamaguchi M, Hara A, Atchalalt K, et al. Effects of insulin-like growth factor-1 on the in vitro maturation of canine oocytes. J Reprod Dev. 2018;64(1):83–8.
Oberlender G, Murgas LDS, Zangeronimo MG, da Silva AC, de Alcantara MT, Pontelo TP, et al. Role of insulin-like growth factor-I and follicular fluid from ovarian follicles with different diameters on porcine oocyte maturation and fertilization in vitro. Theriogenology. 2013;80(4):319–27.
Clark AM, De MDG, Jackson JA, Palmer SS, Tran CAT. Use of IL-6 type cytokines to mature oocytes. Patent DK2325201T3. 2004-11-26. 2004.
Nikanfar S, Hamdi K, Haiaty S, Samadi N, Shahnazi V, Fattahi A, et al. Oncostatin M and its receptor in women with polycystic ovary syndrome and association with assisted reproductive technology outcomes. Reprod Biol. 2022;22(2):100633.
Abir R, Ao A, Jin S, Barnett M, Van den Hurk R, Freimann S, et al. Immunocytochemical detection and reverse transcription polymerase chain reaction expression of oncostatin M (OSM) and its receptor (OSM-Rβ) in human fetal and adult ovaries. Fertil Steril. 2005;83(4):1188–96.
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(3):176.
PubMed Central CAS Google Scholar
Li Z, Zhang M, Zheng J, Tian Y, Zhang H, Tan Y, et al. Human umbilical cord mesenchymal stem cell-derived exosomes improve ovarian function and proliferation of premature ovarian insufficiency by regulating the hippo signaling pathway. Front Endocrinol. 2021;12:711902.
Zhang J, Yin H, Jiang H, Du X, Yang Z. The protective effects of human umbilical cord mesenchymal stem cell-derived extracellular vesicles on cisplatin-damaged granulosa cells. Taiwanese J Obstet Gynecol. 2020;59(4):527–33.
Cheng L, Zhang K, Wu S, Cui M, Xu T. Focus on mesenchymal stem cell-derived exosomes: opportunities and challenges in cell-free therapy. Stem Cells Int 2017;2017.
van Balkom BW, Gremmels H, Giebel B, Lim SK. Proteomic signature of mesenchymal stromal cell-derived small extracellular vesicles. Proteomics. 2019;19(1-2):1800163.
Liao Z, Liu C, Wang L, Sui C, Zhang H. Therapeutic role of mesenchymal stem cell-derived extracellular vesicles in female reproductive diseases. Front Endocrinol. 2021;12:665645.
Ling B, Feng D, Zhou Y, Gao T, Wei H, Tian Z. Effect of conditioned medium of mesenchymal stem cells on the in vitro maturation and subsequent development of mouse oocyte. Braz J Med Biol Res. 2008;41:978–85.
Zohrabi M, Dehghan Marvast L, Izadi M, Mousavi SA, Aflatoonian B. Potential of mesenchymal stem cell-derived exosomes as a novel treatment for female infertility caused by bacterial infections. Front Microbiol. 2022;12:4115.
Izadi M, Rezvani ME, Aliabadi A, Karimi M, Aflatoonian B. Mesenchymal stem cells-derived exosomes as a Promising new approach for the treatment of infertility caused by polycystic ovary syndrome (PCOS). Front Pharmacol. 2022;4315
Asgharzadeh S, Mirshokraei P, Hassanpour H, Ahmadi E, Nazari H. The effect of mesenchymal stem cells as co-culture in in vitro nuclear maturation of ovine oocytes. Anim Sci Pap Rep. 2015;33(3):223–32.
Tork S, Sharifi ZN, Movassaghi S, Molaeeghaleh N, Abdi S. Evaluation of the effects of human bone marrow mesenchymal stem cells conditioned medium on growth and maturation of mouse ovarian follicle after vitrification. Cells Tissues Organs. 2022;211(5):565–76.
Qu P, Qing S, Liu R, Qin H, Wang W, Qiao F, et al. Effects of embryo-derived exosomes on the development of bovine cloned embryos. PloS One. 2017;12(3):e0174535.
PubMed PubMed Central Google Scholar
Miranda MS, Nascimento HS, Costa MP, Costa NN, Brito KN, Lopes CT, et al. Increasing of blastocyst rate and gene expression in co-culture of bovine embryos with adult adipose tissue-derived mesenchymal stem cells. J Assist Reprod Genet. 2016;33:1395–403.
PubMed PubMed Central Google Scholar
Miraki S, Mokarizadeh A, Banafshi O, Assadollahi V, Abdi M, Roshani D, et al. Embryonic stem cell conditioned medium supports in vitro maturation of mouse oocytes. Avicenna J Med Biotechnol. 2017;9(3):114.
PubMed PubMed Central Google Scholar
Jafarzadeh H, Nazarian H, Ghaffari Novin M, Shams Mofarahe Z, Eini F, Piryaei A. Improvement of oocyte in vitro maturation from mice with polycystic ovary syndrome by human mesenchymal stromal cell–conditioned media. J Cell Biochem. 2018;119(12):10365–75.
Matsuda F, Inoue N, Manabe N, Ohkura S. Follicular growth and atresia in mammalian ovaries: regulation by survival and death of granulosa cells. J Reprod Dev. 2012;58(1):44–50.
Waimey KE, Smith BM, Confino R, Jeruss JS, Pavone ME. Understanding fertility in young female cancer patients. J Women's Health. 2015;24(10):812–8.
Flynt AS, Lai EC. Biological principles of microRNA-mediated regulation: shared themes amid diversity. Nat Rev Genet. 2008;9(11):831–42.
PubMed PubMed Central CAS Google Scholar
Sirotkin AV, Lauková M, Ovcharenko D, Brenaut P, Mlynček M. Identification of microRNAs controlling human ovarian cell proliferation and apoptosis. J Cell Physiol. 2010;223(1):49–56.
Esfandyari S, Elkafas H, Chugh RM, Park H-s, Navarro A, Al-Hendy A. Exosomes as biomarkers for female reproductive diseases diagnosis and therapy. Int J Mol Sci. 2021;22(4):2165.
PubMed PubMed Central CAS Google Scholar
Sun L, Li D, Song K, Wei J, Yao S, Li Z, et al. Exosomes derived from human umbilical cord mesenchymal stem cells protect against cisplatin-induced ovarian granulosa cell stress and apoptosis in vitro. Sci Rep. 2017;7(1):1–13.
Ding C, Zhu L, Shen H, Lu J, Zou Q, Huang C, et al. Exosomal miRNA-17-5p derived from human umbilical cord mesenchymal stem cells improves ovarian function in premature ovarian insufficiency by regulating SIRT7. Stem Cells. 2020;38(9):1137–48.
Liu C, Yin H, Jiang H, Du X, Wang C, Liu Y, et al. Extracellular vesicles derived from mesenchymal stem cells recover fertility of premature ovarian insufficiency mice and the effects on their offspring. Cell Transplant. 2020;29:0963689720923575.
PubMed PubMed Central Google Scholar
Deng T, He J, Yao Q, Wu L, Xue L, Wu M, et al. Human umbilical cord mesenchymal stem cells improve ovarian function in chemotherapy-induced premature ovarian failure mice through inhibiting apoptosis and inflammation via a paracrine mechanism. Reprod Sci. 2021;28:1718–32.
Zhang Y-Y, Yang W, Zhang Y, Hu Z, Chen Y, Ma Y, et al. HucMSC-EVs facilitate in vitro development of maternally aged preantral follicles and oocytes. Stem Cell Rev Rep. 2023;1-22
Sun B, Ma Y, Wang F, Hu L, Sun Y. miR-644-5p carried by bone mesenchymal stem cell-derived exosomes targets regulation of p53 to inhibit ovarian granulosa cell apoptosis. Stem Cell Res Ther. 2019;10(1):1–9.
Ding C, Qian C, Hou S, Lu J, Zou Q, Li H, et al. Exosomal miRNA-320a is released from hAMSCs and regulates SIRT4 to prevent reactive oxygen species generation in POI. Mol Ther-Nucleic Acids. 2020;21:37–50.
PubMed PubMed Central CAS Google Scholar
Xiao G-Y, Cheng C-C, Chiang Y-S, Cheng WT-K, Liu I, Wu S-C. Exosomal miR-10a derived from amniotic fluid stem cells preserves ovarian follicles after chemotherapy. Sci Rep. 2016;6(1):1–12.
Blazquez R, Sánchez-Margallo FM, Alvarez V, Matilla E, Hernandez N, Marinaro F, et al. Murine embryos exposed to human endometrial MSCs-derived extracellular vesicles exhibit higher VEGF/PDGF AA release, increased blastomere count and hatching rates. PLoS One. 2018;13(4):e0196080.
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