Effects of Vitamin A on In Vitro Maturation of Pre-Pubertal Mouse Spermatogonial Stem Cells

被引:22
|
作者
Travers, Albanne [1 ]
Arkoun, Brahim [1 ]
Safsaf, Athmane [1 ]
Milazzo, Jean-Pierre [1 ]
Absyte, Anne [1 ]
Bironneau, Amandine [1 ]
Perdrix, Anne [1 ]
Sibert, Louis [2 ]
Mace, Bertrand [1 ]
Cauliez, Bruno [3 ]
Rives, Nathalie [1 ]
机构
[1] Univ Rouen, Inst Biomed Res, Rouen Univ Hosp, EA Gametogenesis & Gamete Qual 4308,Reprod Biol L, Rouen, France
[2] Univ Rouen, Inst Biomed Res, Rouen Univ Hosp, EA Gametogenesis & Gamete Qual 4308,Dept Urol, Rouen, France
[3] Univ Rouen, Inst Biomed Res, Rouen Univ Hosp, Biochem Lab, Rouen, France
来源
PLOS ONE | 2013年 / 8卷 / 12期
关键词
RETINOIC ACID; TESTICULAR TISSUE; FERTILITY PRESERVATION; 3-DIMENSIONAL CULTURE; ORGANOTYPIC CULTURE; MEIOTIC DIFFERENTIATION; ORGAN-CULTURE; GERM-CELLS; SPERMATOGENESIS; RAT;
D O I
10.1371/journal.pone.0082819
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Testicular tissue cryopreservation is the only potential option for fertility preservation in pre-pubertal boys exposed to gonadotoxic treatment. Completion of spermatogenesis after in vitro maturation is one of the future uses of harvested testicular tissue. The purpose of the current study was to evaluate the effects of vitamin A on in vitro maturation of fresh and frozen-thawed mouse pre-pubertal spermatogonial stem cells in an organ culture system. Pre-pubertal CD1 mouse fresh testes were cultured for 7 (D7), 9 (D9) and 11 (D11) days using an organ culture system. Basal medium was supplemented with different concentrations of retinol (Re) or retinoic acid (RA) alone or in combination. Seminiferous tubule morphology (tubule diameter, intra-tubular cell type), intra-tubular cell death and proliferation (PCNA antibody) and testosterone level were assessed at D7, D9 and D11. Pre-pubertal mouse testicular tissue were frozen after a soaking temperature performed at -7 degrees C, -8 degrees C or -9 degrees C and after thawing, were cultured for 9 days, using the culture medium preserving the best fresh tissue functionality. Retinoic acid at 10(-6)M and retinol at 3.3.10(-7)M, as well as retinol 10-6M are favourable for seminiferous tubule growth, maintenance of intra-tubular cell proliferation and germ cell differentiation of fresh pre-pubertal mouse spermatogonia. Structural and functional integrity of frozen-thawed testicular tissue appeared to be well-preserved after soaking temperature at -8 degrees C, after 9 days of organotypic culture using 10(-6)M retinol. RA and Re can control in vitro germ cell proliferation and differentiation. Re at a concentration of 10(-6)M maintains intra-tubular cell proliferation and the ability of spermatogonia to initiate spermatogenesis in fresh and frozen pre-pubertal mouse testicular tissue using a soaking temperature at -8 degrees C. Our data suggested a possible human application for in vitro maturation of cryopreserved pre-pubertal testicular tissue.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] Enrichment and In Vitro Culture of Spermatogonial Stem Cells from Pre-Pubertal Monkey Testes
    Kim, Yong-Hee
    Kang, Hyun-Gu
    Kim, Bang-Jin
    Jung, Sang-Eun
    Karmakar, Polash C.
    Kim, Seok-Man
    Hwang, Seongsoo
    Ryu, Buom-Yong
    TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2017, 14 (05) : 557 - 566
  • [2] Enrichment and In Vitro Culture of Spermatogonial Stem Cells from Pre-Pubertal Monkey Testes
    Yong-Hee Kim
    Hyun-Gu Kang
    Bang-Jin Kim
    Sang-Eun Jung
    Polash C. Karmakar
    Seok-Man Kim
    Seongsoo Hwang
    Buom-Yong Ryu
    Tissue Engineering and Regenerative Medicine, 2017, 14 : 557 - 566
  • [3] Retinol Improves In Vitro Differentiation of Pre-Pubertal Mouse Spermatogonial Stem Cells into Sperm during the First Wave of Spermatogenesis
    Arkoun, Brahim
    Dumont, Ludovic
    Milazzo, Jean-Pierre
    Way, Agathe
    Bironneau, Amandine
    Wils, Julien
    Mace, Bertrand
    Rives, Nathalie
    PLOS ONE, 2015, 10 (02):
  • [4] Cryopreservation of putative pre-pubertal bovine spermatogonial stem cells by slow freezing
    Kim, Ki-Jung
    Lee, Yong-An
    Kim, Bang-Jin
    Kim, Yong-Hee
    Kim, Byung-Gak
    Kang, Hyun-Gu
    Jung, Sang-Eun
    Choi, Sun-Ho
    Schmidt, Jonathan A.
    Ryu, Buom-Yong
    CRYOBIOLOGY, 2015, 70 (02) : 175 - 183
  • [5] Proliferation and differentiation of fresh and frozen-thawed pre-pubertal mouse spermatogonial stem cells in a sequential organotypic culture.
    Rives, A.
    Dumont, L.
    Oblette, A.
    Delessard, M.
    Saulnier, J.
    Rives, N.
    Rondanino, C.
    HUMAN REPRODUCTION, 2019, 34 : 176 - 176
  • [6] Derivation, enrichment and characterization of goat (Capra hircus) spermatogonial stem cells from pre-pubertal testes
    Sharma, Ankur
    Shah, Syed Mohmad
    Saini, Neha
    Kaushik, Ramakant
    Singh, Manoj Kumar
    Manik, Radhey Sham
    Singla, Suresh Kumar
    Palta, Prabhat
    Chauhan, Manmohan Singh
    Indian Journal of Animal Research, 2016, 50 (05) : 662 - 667
  • [7] Retinol Improves In Vitro Differentiation of Pre-Pubertal Mouse Spermatogonial Stem Cells into Sperm during the First Wave of Spermatogenesis (vol 10, e0116660, 2015)
    Arkoun, B.
    Dumont, L.
    Milazzo, J-P
    Way, A.
    Bironneau, A.
    Wils, J.
    PLOS ONE, 2015, 10 (04):
  • [8] Acute ethanol exposure affects spermatogonial stem cell homeostasis in pre-pubertal mice
    Caires, Kyle C.
    Shima, Christina M.
    de Avila, Jeanene
    McLean, Derek J.
    REPRODUCTIVE TOXICOLOGY, 2012, 33 (01) : 76 - 84
  • [9] Temperature response of enriched pre-pubertal caprine male germline stem cells in vitro
    Singh, Shiva P.
    Kharche, Suresh D.
    Pathak, Manisha
    Soni, Yogesh K.
    Gururaj, Kumaresan
    Sharma, Atul K.
    Singh, Manoj K.
    Chauhan, Manmohan S.
    CELL STRESS & CHAPERONES, 2021, 26 (06): : 989 - 1000
  • [10] Temperature response of enriched pre-pubertal caprine male germline stem cells in vitro
    Shiva P. Singh
    Suresh D. Kharche
    Manisha Pathak
    Yogesh K. Soni
    Kumaresan Gururaj
    Atul K. Sharma
    Manoj K. Singh
    Manmohan S. Chauhan
    Cell Stress and Chaperones, 2021, 26 : 989 - 1000