Journal of Capital Medical University ›› 2020, Vol. 41 ›› Issue (4): 536-541.doi: 10.3969/j.issn.1006-7795.2020.04.007
• Menopause and Reproductive Endocrinology • Previous Articles Next Articles
Cheng Jiaojiao, Ruan Xiangyan, Du Juan, Gu Muqing
Received:
2020-05-08
Online:
2020-08-21
Published:
2020-07-22
Supported by:
CLC Number:
Cheng Jiaojiao, Ruan Xiangyan, Du Juan, Gu Muqing. Research progress on protective effect of mesenchymal stem cells on hypoxia after human frozen-thawed ovarian tissue transplantation[J]. Journal of Capital Medical University, 2020, 41(4): 536-541.
[1] | Siegel R L, Miller K D, Jemal A. Cancer statistics, 2018[J]. CA Cancer J Clin, 2018,68(1):7-30. |
[2] | Schmidt R, Richter D, Sender A, et al. Motivations for having children after cancer-a systematic review of the literature[J]. Eur J Cancer Care (Engl), 2016,25(1):6-17. |
[3] | Chemaitilly W, Li Z, Krasin M J, et al. Premature ovarian insufficiency in childhood cancer survivors:a report from the St. Jude Lifetime Cohort[J]. J Clin Endocrinol Metab, 2017,102(7):2242-2250. |
[4] | Anderson R A, Mitchell R T, Kelsey T W, et al. Cancer treatment and gonadal function:experimental and established strategies for fertility preservation in children and young adults[J]. Lancet Diabetes Endocrinol, 2015,3(7):556-567. |
[5] | Overbeek A, van den Berg M H, van Leeuwen F E, et al. Chemotherapy-related late adverse effects on ovarian function in female survivors of childhood and young adult cancer:A systematic review[J]. Cancer Treat Rev, 2017,53:10-24. |
[6] | 阮祥燕, 杜娟, 卢丹, 等. 中国首例冻存卵巢组织移植报告[J]. 首都医科大学学报, 2016,6(37):840-842. |
[7] | 阮祥燕. 卵巢组织冻存与移植中国专家共识[J]. 中国临床医生杂志, 2018,46(4):496-500. |
[8] | Donnez J, Dolmans M M. Fertility preservation in women[J]. N Engl J Med, 2017,377(17):1657-1665. |
[9] | 李扬璐, 阮祥燕, Alfred O. Mueck. 人卵巢组织冻存与移植研究进展[J]. 首都医科大学学报, 2017,38(4):485-491. |
[10] | Liebenthron J, Montag M, Reinsberg J, et al. Overnight ovarian tissue transportation for centralized cryobanking:a feasible option[J]. Reprod Biomed Online, 2019,38(5):740-749. |
[11] | Van Eyck A S, Jordan B F, Gallez B, et al. Electron paramagnetic resonance as a tool to evaluate human ovarian tissue reoxygenation after xenografting[J]. Fertil Steril, 2009,92(1):374-381. |
[12] | Israely T, Dafni H, Nevo N, et al. Angiogenesis in ectopic ovarian xenotransplantation:multiparameter characterization of the neovasculature by dynamic contrast-enhanced MRI[J]. Magn Reson Med, 2004,52(4):741-750. |
[13] | Roness H, Meirow D. Follicle reserve loss in ovarian tissue transplantation[J]. Reproduction, 2019,158(5):F35-F44. |
[14] | Gavish Z, Spector I, Peer G, et al. Follicle activation is a significant and immediate cause of follicle loss after ovarian tissue transplantation[J]. J Assist Reprod Genet, 2018,35(1):61-69. |
[15] | Cacciottola L, Manavella D D, Amorim C A, et al. In vivo characterization of metabolic activity and oxidative stress in grafted human ovarian tissue using microdialysis[J]. Fertil Steril, 2018,110(3):534-544. |
[16] | Commin L, Buff S, Rosset E, et al. Follicle development in cryopreserved bitch ovarian tissue grafted to immunodeficient mouse[J]. Reprod Fertil Dev, 2012,24(3):461-471. |
[17] | Harris S E, Leese H J, Gosden R G, et al. Pyruvate and oxygen consumption throughout the growth and development of murine oocytes[J]. Mol Reprod Dev, 2009,76(3):231-238. |
[18] | Durlinger A L, Visser J A, Themmen A P. Regulation of ovarian function:the role of anti-Müllerian hormone[J]. Reproduction, 2002,124(5):601-609. |
[19] | Ayuandari S, Winkler-Crepaz K, Paulitsch M, et al. Follicular growth after xenotransplantation of cryopreserved/thawed human ovarian tissue in SCID mice:dynamics and molecular aspects[J]. J Assist Reprod Genet, 2016,33(12):1585-1593. |
[20] | Silber S. Ovarian tissue cryopreservation and transplantation:scientific implications[J]. J Assist Reprod Genet, 2016,33(12):1595-1603. |
[21] | Masciangelo R, Hossay C, Chiti M C, et al. Role of the PI3K and Hippo pathways in follicle activation after grafting of human ovarian tissue[J]. J Assist Reprod Genet, 2020,37(1):101-108. |
[22] | Kawamura K, Cheng Y, Suzuki N, et al. Hippo signaling disruption and Akt stimulation of ovarian follicles for infertility treatment[J]. Proc Natl Acad Sci U S A, 2013,110(43):17474-17479. |
[23] | van Kasteren Y M, Schoemaker J. Premature ovarian failure:a systematic review on therapeutic interventions to restore ovarian function and achieve pregnancy[J]. Hum Reprod Update, 1999,5(5):483-492. |
[24] | Meirow D, Roness H, Kristensen S G, et al. Optimizing outcomes from ovarian tissue cryopreservation and transplantation; activation versus preservation[J]. Hum Reprod, 2015,30(11):2453-2456. |
[25] | Kawamura K, Cheng Y, Sun Y P, et al. Ovary transplantation:to activate or not to activate[J]. Hum Reprod, 2015,30(11):2457-2460. |
[26] | Jensen A K, Kristensen S G, Macklon K T, et al. Outcomes of transplantations of cryopreserved ovarian tissue to 41 women in Denmark[J]. Hum Reprod, 2015,30(12):2838-2845. |
[27] | Meirow D, Ra'Anani H, Shapira M, et al. Transplantations of frozen-thawed ovarian tissue demonstrate high reproductive performance and the need to revise restrictive criteria[J]. Fertil Steril, 2016,106(2):467-474. |
[28] | Wilkosz P, Greggains G D, Tanbo T G, et al. Female reproductive decline is determined by remaining ovarian reserve and age[J]. PLoS One, 2014,9(10):e108343. |
[29] | Gaytan F, Morales C, Leon S, et al. Crowding and follicular fate:spatial determinants of follicular reserve and activation of follicular growth in the mammalian ovary[J]. PLoS One, 2015,10(12):e144099. |
[30] | Rosendahl M, Simonsen M K, Kjer J J. The influence of unilateral oophorectomy on the age of menopause[J]. Climacteric, 2017,20(6):540-544. |
[31] | Anderson J D, Johansson H J, Graham C S, et al. Comprehensive proteomic analysis of mesenchymal stem cell exosomes reveals modulation of angiogenesis via nuclear factor-Kappa B signaling[J]. Stem Cells, 2016,34(3):601-613. |
[32] | Stanko P, Kaiserova K, Altanerova V, et al. Comparison of human mesenchymal stem cells derived from dental pulp, bone marrow, adipose tissue, and umbilical cord tissue by gene expression[J]. Biomed Pap Med Fac Univ Palacky Olomouc Czech Repub, 2014,158(3):373-377. |
[33] | Hsueh A J, Kawamura K, Cheng Y, et al. Intraovarian control of early folliculogenesis[J]. Endocr Rev, 2015,36(1):1-24. |
[34] | Li T, Xia M, Gao Y, et al. Human umbilical cord mesenchymal stem cells:an overview of their potential in cell-based therapy[J]. Expert Opin Biol Ther, 2015,15(9):1293-1306. |
[35] | Chandravanshi B, Bhonde R R. Human umbilical cord-derived stem cells:isolation, characterization, differentiation, and application in treating diabetes[J]. Crit Rev Biomed Eng, 2018,46(5):399-412. |
[36] | Zhao C, Zhang L, Kong W, et al. Umbilical cord-derived mesenchymal stem cells inhibit cadherin-11 expression by fibroblast-like synoviocytes in rheumatoid arthritis[J]. J Immunol Res, 2015,2015:137695. |
[37] | Yang Z, Du X, Wang C, et al. Therapeutic effects of human umbilical cord mesenchymal stem cell-derived microvesicles on premature ovarian insufficiency in mice[J]. Stem Cell Res Ther, 2019,10(1):250. |
[38] | Zuk P A, Zhu M, Ashjian P, et al. Human adipose tissue is a source of multipotent stem cells[J]. Mol Biol Cell, 2002,13(12):4279-4295. |
[39] | Choi J R, Yong K W, Wan S W. Effect of hypoxia on human adipose-derived mesenchymal stem cells and its potential clinical applications[J]. Cell Mol Life Sci, 2017,74(14):2587-2600. |
[40] | Lafosse A, Desmet C, Aouassar N, et al. Autologous adipose stromal cells seeded onto a human collagen matrix for dermal regeneration in chronic wounds:clinical proof of concept[J]. Plast Reconstr Surg, 2015,136(2):279-295. |
[41] | Schubert T, Xhema D, Veriter S, et al. The enhanced performance of bone allografts using osteogenic-differentiated adipose-derived mesenchymal stem cells[J]. Biomaterials, 2011,32(34):8880-8891. |
[42] | Kupcova S H. Proteomic techniques for characterisation of mesenchymal stem cell secretome[J]. Biochimie, 2013,95(12):2196-2211. |
[43] | Friedman O, Orvieto R, Fisch B, et al. Possible improvements in human ovarian grafting by various host and graft treatments[J]. Hum Reprod, 2012,27(2):474-482. |
[44] | Mahmoodi M, Soleimani M M, Shariatzadeh S M, et al. N-acetylcysteine improves function and follicular survival in mice ovarian grafts through inhibition of oxidative stress[J]. Reprod Biomed Online, 2015,30(1):101-110. |
[45] | Mahmoodi M, Soleimani M M, Shariatzadeh S M, et al. Effects of erythropoietin on ischemia, follicular survival, and ovarian function in ovarian grafts[J]. Reproduction, 2014,147(5):733-741. |
[46] | Dolmans M M, Binda M M, Jacobs S, et al. Impact of the cryopreservation technique and vascular bed on ovarian tissue transplantation in cynomolgus monkeys[J]. J Assist Reprod Genet, 2015,32(8):1251-1262. |
[47] | Damous L L, Nakamuta J S, de Carvalho A E, et al. Adipose tissue-derived stem cell therapy in rat cryopreserved ovarian grafts[J]. Stem Cell Res Ther, 2015,6:57. |
[48] | Xia X, Yin T, Yan J, et al. Mesenchymal Stem Cells Enhance angiogenesis and follicle survival in human cryopreserved ovarian cortex transplantation[J]. Cell Transplant, 2015,24(10):1999-2010. |
[49] | Manavella D D, Cacciottola L, Pomme S, et al. Two-step transplantation with adipose tissue-derived stem cells increases follicle survival by enhancing vascularization in xenografted frozen-thawed human ovarian tissue[J]. Hum Reprod, 2018,33(6):1107-1116. |
[50] | Dolmans M M, Cacciottola L, Amorim C A, et al. Translational research aiming to improve survival of ovarian tissue transplants using adipose tissue-derived stem cells[J]. Acta Obstet Gynecol Scand, 2019,98(5):665-671. |
[51] | Borsi E, Terragna C, Brioli A, et al. Therapeutic targeting of hypoxia and hypoxia-inducible factor 1 alpha in multiple myeloma[J]. Transl Res, 2015,165(6):641-650. |
[52] | Palomaki S, Pietila M, Laitinen S, et al. HIF-1alpha is upregulated in human mesenchymal stem cells[J]. Stem Cells, 2013,31(9):1902-1909. |
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