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Methodologies for Cryopreservation of Mammalian Germline Cells and Tissues

  • 투고 : 2017.05.12
  • 심사 : 2017.05.29
  • 발행 : 2017.05.31

초록

Until today, success in germline cells and tissue cryopreservation is limited mainly due to the poor understanding of the complex physiological processes can lead to cell damage during cryopreservation. Germline cells, from both male and female, have unique ability to differentiate into one or more cell lines and thus it becomes a crucial point to store them in subzero temperature with the minimal damage of their functional properties and maximum recovery of unchanged and viable cells when thawed. In the past three decades, a vast research has been performed using various different animal models which in fact have led to development of new methodologies and optimization of older one. However, successful use of animal model has provided the opportunity in research with human germline cells and tissues preservation, but not in all the cases. Therefore, the use of new cryo-protective chemicals and modified protocols have been often found in different groups of researchers based on the types, physical structures, utility and animal species of the specimens to be cryopreserved. This review discusses about the basics of different types of cryopreservation methodologies and commonly used optimized protocols and cryoprotectants for germline cells and tissues preservation.

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참고문헌

  1. Abrishami M, Anzar M, Yang Y, Honaramooz A (2010): Cryopreservation of immature porcine testis tissue to maintain its developmental potential after xenografting into recipient mice. Theriogenology 73: 86-96. https://doi.org/10.1016/j.theriogenology.2009.08.004
  2. Agca Y, Mullen S, Liu J, Johnson-Ward J, Gould K, Chan A, Critser J (2005): Osmotic tolerance and membrane permeability characteristics of rhesus monkey (Macaca mulatta) spermatozoa. Cryobiology 51: 1-14. https://doi.org/10.1016/j.cryobiol.2005.04.004
  3. Aigner S, Van der Elst J, Siebzehnrubl E, Wildt L, Lang N, Van Steirteghem AC (1992): The influence of slow and ultra-rapid freezing on the organization of the meiotic spindle of the mouse oocyte. Hum Reprod 7:857-864. https://doi.org/10.1093/oxfordjournals.humrep.a137750
  4. Almodin CG, Minguetti-Camara VC, Meister H, Ferreira JO, Franco RL, Cavalcante AA, Radaelli MR, Bahls AS, Moron AF, Murta CG (2004): Recovery of fertility after grafting of cryopreserved germinative tissue in female rabbits following radiotherapy. Hum Reprod 19:1287-1293. https://doi.org/10.1093/humrep/deh246
  5. Arav A, Gavish Z, Elami A, Natan Y, Revel A, Silber S, Gosden RG, Patrizio P (2010): Ovarian function 6 years after cryopreservation and transplantation of whole sheep ovaries. Reprod Biomed Online 20:48-52. https://doi.org/10.1016/j.rbmo.2009.10.019
  6. Arav A, Natan Y (2009): Directional freezing: a solution to the methodological challenges to preserve large organs. Semin Reprod Med 27:438-442. https://doi.org/10.1055/s-0029-1241052
  7. Arav A, Natan Y (2017): Chapter 16 directional freezing of ovarian tissue and freeze-drying of stem cells for fertility preservation. Methods Mol Biol 1568: 223-229.
  8. Aubard Y, Poirot C, Piver P, Galinat S, Teissier MP (2001): Are there indications for ovarian tissue cryopreservation? Fertility and Sterility 76:414-415. https://doi.org/10.1016/S0015-0282(01)01905-7
  9. Avarbock MR, Brinster CJ, Brinster RL (1996): Reconstitution of spermatogenesis from frozen spermatogonial stem cells. Nat Med 2:693-696. https://doi.org/10.1038/nm0696-693
  10. Aye M, Di Giorgio C, De Mo M, Botta A, Perrin J, Courbiere B (2010): Assessment of the genotoxicity of three cryoprotectants used for human oocyte vitrification: Dimethyl sulfoxide, ethylene glycol and propylene glycol. Food and Chemical Toxicology 48:1905-1912. https://doi.org/10.1016/j.fct.2010.04.032
  11. Bagis H, Akkoc T, Tass A, Aktoprakligil D (2008): Cryogenic effect of antifreeze protein on transgenic mouse ovaries and the production of live offspring by orthotopic transplantation of cryopreserved mouse ovaries. Mol Reprod Dev 75:608-613. https://doi.org/10.1002/mrd.20799
  12. Benson JD, Woods EJ, Walters EM, Critser JK (2012): The cryobiology of spermatozoa. Theriogenology 78: 1682-1699. https://doi.org/10.1016/j.theriogenology.2012.06.007
  13. Bukovsky A, Caudle MR, Svetlikova M, Wimalasena J, Ayala ME, Dominguez R (2005): Oogenesis in adult mammals, including humans: a review. Endocrine 26:301-316. https://doi.org/10.1385/ENDO:26:3:301
  14. Carroll J, Depypere H, Matthews CD (1990): Freeze-thaw-induced changes of the zona pellucida explains decreased rates of fertilization in frozenthawed mouse oocytes. J Reprod Fertil 90:547-553. https://doi.org/10.1530/jrf.0.0900547
  15. Chang CC, Shapiro DB, Bernal DP, Wright G, Kort HI, Nagy ZP (2008): Human oocyte vitrification: invivo and in-vitro maturation outcomes. Reprod Biomed Online 17:684-688. https://doi.org/10.1016/S1472-6483(10)60316-1
  16. Chian RC, Gilbert L, Huang JY, Demirtas E, Holzer H, Benjamin A, Buckett WM, Tulandi T, Tan SL (2009): Live birth after vitrification of in vitro matured human oocytes. Fertil Steril 91:372-376. https://doi.org/10.1016/j.fertnstert.2007.11.088
  17. Chian RC, Kuwayama M, Tan L, Tan J, Kato O, Nagai T (2004): High survival rate of bovine oocytes matured in vitro following vitrification. J Reprod Dev 50:685-696. https://doi.org/10.1262/jrd.50.685
  18. Cobo A, Kuwayama M, Perez S, Ruiz A, Pellicer A, Remohi J (2008): Comparison of concomitant outcome achieved with fresh and cryopreserved donor oocytes vitrified by the Cryotop method. Fertil Steril 89:1657-1664. https://doi.org/10.1016/j.fertnstert.2007.05.050
  19. Curaba M, Verleysen M, Amorim CA, Dolmans MM, Van Langendonckt A, Hovatta O, Wyns C, Donnez J (2011): Cryopreservation of prepubertal mouse testicular tissue by vitrification. Fertil Steril 95:1229-1234 e1. https://doi.org/10.1016/j.fertnstert.2010.04.062
  20. De Rooij DG, Van Dissel-Emiliani FM, Van Pelt AM (1989): Regulation of spermatogonial proliferation. Ann N Y Acad Sci 564:140-153. https://doi.org/10.1111/j.1749-6632.1989.tb25894.x
  21. Deller RC, Vatish M, Mitchell DA, Gibson MI (2014): Synthetic polymers enable non-vitreous cellular cryopreservation by reducing ice crystal growth during thawing. Nat Commun 5:3244. https://doi.org/10.1038/ncomms4244
  22. Donnez J, Jadoul P, Pirard C, Hutchings G, Demylle D, Squifflet J, Smitz J, Dolmans MM (2012): Live birth after transplantation of frozen-thawed ovarian tissue after bilateral oophorectomy for benign disease. Fertil Steril 98:720-725. https://doi.org/10.1016/j.fertnstert.2012.05.017
  23. Frederickx V, Michiels A, Goossens E, De Block G, Van Steirteghem AC, Tournaye H (2004): Recovery, survival and functional evaluation by transplantation of frozen-thawed mouse germ cells. Hum Reprod 19:948-953. https://doi.org/10.1093/humrep/deh154
  24. Gao DY, Liu J, Liu C, McGann LE, Watson PF, Kleinhans FW, Mazur P, Critser ES, Critser JK (1995): Prevention of osmotic injury to human spermatozoa during addition and removal of glycerol. Hum Reprod 10:1109-1122. https://doi.org/10.1093/oxfordjournals.humrep.a136103
  25. Gook DA, Osborn SM, Johnston WIH (1993): Cryopreservation of mouse and human oocytes using 1,2-propanediol and the configuration of the meiotic spindle. Human Reproduction 8:1101-1109. https://doi.org/10.1093/oxfordjournals.humrep.a138201
  26. Goossens E, Frederickx V, Geens M, De Block G, Tournaye H (2008): Cryosurvival and spermatogenesis after allografting prepubertal mouse tissue: comparison of two cryopreservation protocols. Fertil Steril 89:725-727. https://doi.org/10.1016/j.fertnstert.2007.03.044
  27. Gouk SS, Loh YF, Kumar SD, Watson PF, Kuleshova LL (2011): Cryopreservation of mouse testicular tissue: prospect for harvesting spermatogonial stem cells for fertility preservation. Fertil Steril 95:2399-2403. https://doi.org/10.1016/j.fertnstert.2011.03.035
  28. Hermann BP, Sukhwani M, Lin CC, Sheng Y, Tomko J, Rodriguez M, Shuttleworth JJ, McFarland D, Hobbs RM, Pandolfi PP, Schatten GP, Orwig KE (2007): Characterization, cryopreservation, and ablation of spermatogonial stem cells in adult rhesus macaques. Stem Cells 25:2330-2338. https://doi.org/10.1634/stemcells.2007-0143
  29. Hotamisligil S, Toner M, Powers RD (1996): Changes in membrane integrity, cytoskeletal structure, and developmental potential of murine oocytes after vitrification in ethylene glycol. Biol Reprod 55: 161-168. https://doi.org/10.1095/biolreprod55.1.161
  30. Izadyar F, Matthijs-Rijsenbilt JJ, den Ouden K, Creemers LB, Woelders H, de Rooij (2002): Development of a cryopreservation protocol for type A spermatogonia. J Androl 23:537-545.
  31. Jahnukainen K, Ehmcke J, Hergenrother SD, Schlatt S (2007): Effect of cold storage and cryopreservation of immature non-human primate testicular tissue on spermatogonial stem cell potential in xenografts. Hum Reprod 22:1060-1067. https://doi.org/10.1093/humrep/del471
  32. Johnson MH (1989): The effect on fertilization of exposure of mouse oocytes to dimethyl sulfoxide: an optimal protocol. J In Vitro Fert Embryo Transf 6: 68-75.
  33. Kanatsu-Shinohara M, Ogonuki N, Inoue K, Ogura A, Toyokuni S, Shinohara T (2003): Restoration of fertility in infertile mice by transplantation of cryopreserved male germline stem cells. Hum Reprod 18:2660-2667. https://doi.org/10.1093/humrep/deg483
  34. Karlsson JO, Toner M (1996): Long-term storage of tissues by cryopreservation: critical issues. Biomaterials 17:243-256. https://doi.org/10.1016/0142-9612(96)85562-1
  35. Keros V, Hultenby K, Borgstrom B, Fridstrom M, Jahnukainen K, Hovatta O (2007): Methods of cryopreservation of testicular tissue with viable spermatogonia in pre-pubertal boys undergoing gonadotoxic cancer treatment. Hum Reprod 22:1384-1395. https://doi.org/10.1093/humrep/del508
  36. Keros V, Rosenlund B, Hultenby K, Aghajanova L, Levkov L, Hovatta O (2005): Optimizing cryopreservation of human testicular tissue: comparison of protocols with glycerol, propanediol and dimethylsulphoxide as cryoprotectants. Human Reproduction 20:1676-1687. https://doi.org/10.1093/humrep/deh797
  37. Keros V, Xella S, Hultenby K, Pettersson K, Sheikhi M, Volpe A, Hreinsson J, Hovatta O (2009): Vitrification versus controlled-rate freezing in cryopreservation of human ovarian tissue. Hum Reprod 24: 1670-1683. https://doi.org/10.1093/humrep/dep079
  38. Kim KJ, Lee YA, Kim BJ, Kim YH, Kim BG, Kang HG, Jung SE, Choi SH, Schmidt JA, Ryu BY (2015): Cryopreservation of putative pre-pubertal bovine spermatogonial stem cells by slow freezing. Cryobiology 70:175-183. https://doi.org/10.1016/j.cryobiol.2015.02.007
  39. Klocke S, Bundgen N, Koster F, Eichenlaub-Ritter U, Griesinger G (2015): Slow-freezing versus vitrification for human ovarian tissue cryopreservation. Arch Gynecol Obstet 291:419-426. https://doi.org/10.1007/s00404-014-3390-6
  40. Koruji M, Movahedin M, Mowla SJ, Gourabi H (2007): Colony formation ability of frozen thawed spermatogonial stem cell from adult mouse. Iranian Journal of Reproductive Medicine 5:109-115.
  41. Kuleshova L, Gianaroli L, Magli C, Ferraretti A, Trounson A (1999): Birth following vitrification of a small number of human oocytes: case report. Hum Reprod 14:3077-3079. https://doi.org/10.1093/humrep/14.12.3077
  42. Kuleshova LL, Lopata A (2002): Vitrification can be more favorable than slow cooling. Fertility and Sterility 78:449-454. https://doi.org/10.1016/S0015-0282(02)03305-8
  43. Kuleshova LL, Wang XW, Wu YN, Zhou Y, Yu H (2004): Vitrification of encapsulated hepatocytes with reduced cooling and warming rates. Cryo Letters 25: 241-254.
  44. Kuwayama M, Vajta G, Kato O, Leibo SP (2005): Highly efficient vitrification method for cryopreservation of human oocytes. Reprod Biomed Online 11:300-308. https://doi.org/10.1016/S1472-6483(10)60837-1
  45. Kvist K, Thorup J, Byskov AG, Hoyer PE, Mollgard K, Yding Andersen C (2006): Cryopreservation of intact testicular tissue from boys with cryptorchidism. Hum Reprod 21:484-491. https://doi.org/10.1093/humrep/dei331
  46. Lee HH, Lee HJ, Kim HJ, Lee JH, Ko Y, Kim SM, Lee JR, Suh CS, Kim SH (2015a): Effects of antifreeze proteins on the vitrification of mouse oocytes: comparison of three different antifreeze proteins. Hum Reprod 30:2110-2119. https://doi.org/10.1093/humrep/dev170
  47. Lee J, Kim SK, Youm HW, Kim HJ, Lee JR, Suh C S, Kim SH (2015b): Effects of three different types of antifreeze proteins on mouse ovarian tissue cryopreservation and transplantation. PLoS One 10:e-0126252.
  48. Lee YA, Kim YH, Kim BJ, Jung MS, Auh JH, Seo J T, Park YS, Lee SH, Ryu BY (2013a): Cryopreservation of mouse spermatogonial stem cells in dimethylsulfoxide and polyethylene glycol. Biol Reprod 89:109.
  49. Lee YA, Kim YH, Kim BJ, Kim BG, Kim KJ, Auh J H, Schmidt JA, Ryu BY (2013b): Cryopreservation in trehalose preserves functional capacity of murine spermatogonial stem cells. PLoS One 8:e54889. https://doi.org/10.1371/journal.pone.0054889
  50. Levi Setti PE, Porcu E, Patrizio P, Vigiliano V, de Luca R, d'Aloja P, Spoletini R, Scaravelli G (2014): Human oocyte cryopreservation with slow freezing versus vitrification. Results from the National Italian Registry data, 2007-2011. Fertil Steril 102:90-95 e2. https://doi.org/10.1016/j.fertnstert.2014.03.052
  51. Liu JA, Song YH, Cheng KM, Silversides FG (2010): Production of donor-derived offspring from cryopreserved ovarian tissue in Japanese quail (Coturnix japonica). Biology of Reproduction 83:15-19.
  52. Liu JL, Kusakabe H, Chang CC, Suzuki H, Schmidt DW, Julian M, Pfeffer R, Bormann CL, Tian XC, Yanagimachi R, Yang X (2004): Freeze-dried sperm fertilization leads to full-term development in rabbits. Biol Reprod 70:1776-1781. https://doi.org/10.1095/biolreprod.103.025957
  53. Loi P, Beaujean N, Khochbin S, Fulka J, Jr, Ptak G (2008a): Asymmetric nuclear reprogramming in somatic cell nuclear transfer? Bioessays 30:66-74. https://doi.org/10.1002/bies.20684
  54. Loi P, Matsukawa K, Ptak G, Clinton M, Fulka J, Jr, Nathan Y, Arav A (2008b): Freeze-dried somatic cells direct embryonic development after nuclear transfer. PLoS One 3:e2978. https://doi.org/10.1371/journal.pone.0002978
  55. Lovelock JE (1953a): The haemolysis of human red blood-cells by freezing and thawing. Biochim Biophys Acta 10:414-426. https://doi.org/10.1016/0006-3002(53)90273-X
  56. Lovelock JE (1953b): The mechanism of the protective action of glycerol against haemolysis by freezing and thawing. Biochim Biophys Acta 11:28-36. https://doi.org/10.1016/0006-3002(53)90005-5
  57. Lucena E, Bernal DP, Lucena C, Rojas A, Moran A, Lucena A (2006): Successful ongoing pregnancies after vitrification of oocytes. Fertil Steril 85:108-111. https://doi.org/10.1016/j.fertnstert.2005.09.013
  58. Mazur P (1970): Cryobiology: the freezing of biological systems. Science 168:939-949. https://doi.org/10.1126/science.168.3934.939
  59. Milazzo JP, Vaudreuil L, Cauliez B, Gruel E, Masse L, Mousset-Simeon N, Mace B, Rives N (2008): Comparison of conditions for cryopreservation of testicular tissue from immature mice. Human Reproduction 23:17-28.
  60. Nakagata N, Takeshima T (1993): Cryopreservation of mouse spermatozoa from inbred and F1 hybrid strains. Jikken Dobutsu 42:317-320.
  61. Noiles EE, Thompson KA, Storey BT (1997): Water permeability, Lp, of the mouse sperm plasma membrane and its activation energy are strongly dependent on interaction of the plasma membrane with the sperm cytoskeleton. Cryobiology 35:79-92. https://doi.org/10.1006/cryo.1997.2033
  62. Ohta H, Wakayama T (2005): Generation of normal progeny by intracytoplasmic sperm injection following grafting of testicular tissue from cloned mice that died postnatally. Biology of Reproduction 73: 390-395. https://doi.org/10.1095/biolreprod.105.041673
  63. Paffoni A, Guarneri C, Ferrari S, Restelli L, Nicolosi AE, Scarduelli C, Ragni G (2011): Effects of two vitrification protocols on the developmental potential of human mature oocytes. Reprod Biomed Online 22:292-298. https://doi.org/10.1016/j.rbmo.2010.11.004
  64. Pegg DE (2007): Principles of cryopreservation. Methods Mol Biol 368:39-57.
  65. Pickering SJ, Johnson MH (1987): The influence of cooling on the organization of the meiotic spindle of the mouse oocyte. Hum Reprod 2:207-216. https://doi.org/10.1093/oxfordjournals.humrep.a136516
  66. Polge C, Smith AU, Parkes AS (1949): Revival of spermatozoa after vitrification and dehydration at low temperatures. Nature 15:666.
  67. Rall WF (1987): Factors affecting the survival of mouse embryos cryopreserved by vitrification. Cryobiology 24:387-402. https://doi.org/10.1016/0011-2240(87)90042-3
  68. Rapatz G, Luyet B (1960): Microscopic observations on the development of the ice phase in the freezing of blood. Biodynamica 8:195-239.
  69. Revelli A, Marchino G, Dolfin E, Molinari E, Delle Piane L, Salvagno F, Benedetto C (2013): Live birth after orthotopic grafting of autologous cryopreserved ovarian tissue and spontaneous conception in Italy. Fertil Steril 99:227-230. https://doi.org/10.1016/j.fertnstert.2012.09.029
  70. Rubinsky B, Arav A, Hong JS, Lee CY (1994): Freezing of mammalian livers with glycerol and antifreeze proteins. Biochem Biophys Res Commun 200: 732-741. https://doi.org/10.1006/bbrc.1994.1512
  71. Saacke RG, Almquist JO (1961): Freeze-drying of bovine spermatozoa. Nature 192:995-996. https://doi.org/10.1038/192995a0
  72. Salle B, Demirci B, Franck M, Berthollet C, Lornage J (2003): Long-term follow-up of cryopreserved hemi-ovary autografts in ewes: pregnancies, births, and histologic assessment. Fertil Steril 80:172-177.
  73. Sanfilippo S, Canis M, Smitz J, Sion B, Darcha C, Janny L, Brugnon F (2015): Vitrification of human ovarian tissue: a practical and relevant alternative to slow freezing. Reprod Biol Endocrinol 13:67. https://doi.org/10.1186/s12958-015-0065-5
  74. Schlatt S, Foppiani L, Rolf C, Weinbauer GF, Nieschlag E (2002): Germ cell transplantation into X-irradiated monkey testes. Human Reproduction 17: 55-62. https://doi.org/10.1093/humrep/17.1.55
  75. Shaw JM, Oranratnachai A, Trounson AO (2000): Fundamental cryobiology of mammalian oocytes and ovarian tissue. Theriogenology 53:59-72. https://doi.org/10.1016/S0093-691X(99)00240-X
  76. Sheikhi M, Hultenby K, Niklasson B, Lundqvist M, Hovatta O (2011): Clinical grade vitrification of human ovarian tissue: an ultrastructural analysis of follicles and stroma in vitrified tissue. Hum Reprod 26:594-603. https://doi.org/10.1093/humrep/deq357
  77. Sherman JK (1954): Freezing and freeze-drying of human spermatozoa. Fertil Steril 5:357-371. https://doi.org/10.1016/S0015-0282(16)31685-5
  78. Shinohara T, Inoue K, Ogonuki N, Kanatsu-Shinohara M, Miki H, Nakata K, Kurome M, Nagashima H, Toyokuni S, Kogishi K, Honjo T, Ogura A (2002): Birth of offspring following transplantation of cryopreserved immature testicular pieces and in-vitro microinsemination. Hum Reprod 17:3039-3045. https://doi.org/10.1093/humrep/17.12.3039
  79. Si W, Benson JD, Men H, Critser JK (2006): Osmotic tolerance limits and effects of cryoprotectants on the motility, plasma membrane integrity and acrosomal integrity of rat sperm. Cryobiology 53:336-348. https://doi.org/10.1016/j.cryobiol.2006.09.001
  80. Surrey ES, Quinn PJ (1990): Successful ultrarapid freezing of unfertilized oocytes. J In Vitro Fert Embryo Transf 7:262-266. https://doi.org/10.1007/BF01129531
  81. Tada N, Sato M, Yamanoi J, Mizorogi T, Kasai K, Ogawa S (1990): Cryopreservation of mouse spermatozoa in the presence of raffinose and glycerol. J Reprod Fertil 89:511-516. https://doi.org/10.1530/jrf.0.0890511
  82. Takahashi E, Miyoshi I, Nagasu T (2001): Rescue of a transgenic mouse line by transplantation of a frozen-thawed ovary obtained postmortem. Contemporary Topics in Laboratory Animal Science 40:28-31.
  83. Unni S, Kasiviswanathan S, D'Souza S, Khavale S, Mukherjee S, Patwardhan S, Bhartiya D (2012): Efficient cryopreservation of testicular tissue: effect of age, sample state, and concentration of cryoprotectant. Fertil Steril 97:200-8 e1. https://doi.org/10.1016/j.fertnstert.2011.10.018
  84. Vajta G, Holm P, Kuwayama M, Booth PJ, Jacobsen H, Greve T, Callesen H (1998): Open Pulled Straw (OPS) vitrification: a new way to reduce cryoinjuries of bovine ova and embryos. Mol Reprod Dev 51:53-58. https://doi.org/10.1002/(SICI)1098-2795(199809)51:1<53::AID-MRD6>3.0.CO;2-V
  85. Van der Elst J, Amerijckx Y, Van Steirteghem A (1998): Ultra-rapid freezing of mouse oocytes lowers the cell number in the inner cell mass of 5 day old in-vitro cultured blastocysts. Hum Reprod 13: 1595-1599. https://doi.org/10.1093/humrep/13.6.1595
  86. van Wagtendonk-de Leeuw AM, den Daas JH, Rall WF (1997): Field trial to compare pregnancy rates of bovine embryo cryopreservation methods: vitrification and one-step dilution versus slow freezing and three-step dilution. Theriogenology 48:1071-1084. https://doi.org/10.1016/S0093-691X(97)00340-3
  87. Vutyavanich T, Piromlertamorn W, Nunta S (2010): Rapid freezing versus slow programmable freezing of human spermatozoa. Fertil Steril 93:1921-1928. https://doi.org/10.1016/j.fertnstert.2008.04.076
  88. Wallin A, Ghahremani M, Dahm-Kahler P, Brannstrom M (2009): Viability and function of the cryopreserved whole ovary: in vitro studies in the sheep. Hum Reprod 24:1684-1694. https://doi.org/10.1093/humrep/dep060
  89. Watanabe H, Kohaya N, Kamoshita M, Fujiwara K, Matsumura K, Hyon SH, Ito J, Kashiwazaki N (2013): Efficient production of live offspring from mouse oocytes vitrified with a novel cryoprotective agent, carboxylated epsilon-poly-L-lysine. PLoS One 8:e-83613.
  90. Wu X, Goodyear SM, Abramowitz LK, Bartolomei MS, Tobias JW, Avarbock MR, Brinster RL (2012): Fertile offspring derived from mouse spermatogonial stem cells cryopreserved for more than 14 years. Human Reproduction 27:1249-1259. https://doi.org/10.1093/humrep/des077
  91. Yoon TK, Kim TJ, Park SE, Hong SW, Ko JJ, Chung HM, Cha KY (2003): Live births after vitrification of oocytes in a stimulated in vitro fertilization-embryo transfer program. Fertil Steril 79:1323-6. https://doi.org/10.1016/S0015-0282(03)00258-9
  92. Zeng W, Snedaker AK, Megee S, Rathi R, Chen F, Honaramooz A, Dobrinski I (2009): Preservation and transplantation of porcine testis tissue. Reprod Fertil Dev 21:489-497. https://doi.org/10.1071/RD08235