Please wait a minute...

中国生物工程杂志

China Biotechnology
China Biotechnology  2013, Vol. 33 Issue (3): 135-142    DOI:
    
The Research Progress of Mammal Sperm Induction in vitro
CHANG Zhuo1, HOU Ling-ling1, ZHOU Ya-qiong1, PENG Hong-shang2, KE Shen 1
1. College of Life Sciences and Bioengineering, Beijing Jiaotong University, Beijing 100044, China;
2. Institute of Optoelectronic Technolog, Beijing Jiaotong University, Beijing 100044, China
Download: HTML   PDF(598KB) HTML
Export: BibTeX | EndNote (RIS)      

Abstract  In order to study the mechanisms of proliferation, differentiation and maturation in male mammals’ ge rm cell and the factors which could impact those processes, and find the way to treat male infertility, the researchers tried to induce many kinds of seed cells into sperms. In vitro experiments have advantages such as continuous observation, excluding the effects of individual differences, designing easily single-factor experiment etc. In recent years there are many breakthroughs. Spermatagonial stem cell (SSC), embryonic stem cell (ESC), induced pluripotent stem cell (iPS) and mesenchymal stem cell (MSC) has been successfully induced into sperm in vitro. Here, the research progress of mammal sperm induction in vitro were revieued.

Key wordsMammal      Sperm      In vitro induction      Stem cell     
Received: 08 October 2012      Published: 25 March 2013
ZTFLH:  Q492  
Cite this article:

CHANG Zhuo, HOU Ling-ling, ZHOU Ya-qiong, PENG Hong-shang, KE Shen. The Research Progress of Mammal Sperm Induction in vitro. China Biotechnology, 2013, 33(3): 135-142.

URL:

https://manu60.magtech.com.cn/biotech/     OR     https://manu60.magtech.com.cn/biotech/Y2013/V33/I3/135

[1] Caires K, Broady J, McLean D. Maintaining the male germline: regulation of spermatogonial stem cells. J Endocrinol, 2010,205(2): 133-145.
[2] de Rooij D G. Proliferation and differentiation of spermatogonial stem cells. Reproduction, 2001,121(3): 347-354.
[3] Zhang H W, Wang Z R, Zhang S C. The first edition, higher education press.Developmental Biology, 2001:17-19.
[4] Palermo G D, Cohen J, Alikani M, et al. Development and implementation of intracytoplasmic sperm injection (ICSI). Reprod Fertil Dev,1995, 7 (2): 211-217.
[5] Martinovitch PN. Development in vitro of the mammalian gonad. Nature ,1973, 139: 413.
[6] Steinberger A, Steinberger E, Perloff WH. Mammalian Testes in Organ Culture. Exp Cell Res ,1964, 36: 19-27.
[7] Staub C. A century of research on mammalian male germ cell meiotic differentiation in vitro. J Androl,2001, 22 (6): 911-926.
[8] Parks J E, Lee D R, Huang S, et al.Prospects for spermatogenesis in vitro. Theriogenology, 2003, 59 (1): 73-86.
[9] Feng L X, Chen Y, Dettin L, et al. Generation and in vitro differentiation of a spermatogonial cell line. Science, 2002, 297 (5580): 392-395.
[10] La Salle S, Sun F, Handel MA. Isolation and short-term culture of mouse spermatocytes for analysis of meiosis. Methods Mol Biol, 2009, 558: 279-297.
[11] Gohbara A, Katagiri K, Sato T, et al. In vitro murine spermatogenesis in an organ culture system. Biol Reprod, 2010, 83 (2): 261-267.
[12] Sato T, Katagiri K, Gohbara A, et al. In vitro production of functional sperm in cultured neonatal mouse testes. Nature, 2011, 471 (7339): 504-507.
[13] Sato T, Katagiri K, Yokonishi T, et al. In vitro production of fertile sperm from murine spermatogonial stem cell lines. Nature Communications, 2011, 2: 472.
[14] Flanagan JG, Chan DC, Leder P. Transmembrane form of the kit ligand growth factor is determined by alternative splicing and is missing in the Sld mutant. Cell,1991, 64 (5): 1025-1035.
[15] Takashi N, Atsuo O, Takashi S.Reconstitution of mouse spermatogonial stem cell niches in culture.Cell Stem Cell,2012,11(4):567-578.
[16] Toyooka Y, Tsunekawa N, Akasu R, Noce T. Embryonic stem cells can form germ cells in vitro. Proc Natl Acad Sci USA, 2003, 100 (20): 11457-11462.
[17] Geijsen N, Horoschak M, Kim K, et al.. Derivation of embryonic germ cells and male gametes from embryonic stem cells. Nature ,2004, 427 (6970): 148-154.
[18] Takahashi K, Yamanaka S. Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures by defined factors. Cell,2006, 126 (4): 663-676.
[19] Takahashi K, Tanabe K, Ohnuki M, et al. Induction of pluripotent stem cells from adult human fibroblasts by defined factors. Cell, 2007, 131 (5): 861-872.
[20] Nayernia K, Nolte J, Michelmann H W, et al. In vitro-differentiated embryonic stem cells give rise to male gametes that can generate offspring mice. Dev Cell,2006, 11 (1): 125-132.
[21] Nayernia K, Li M, Jaroszynski L, et al. Stem cell based therapeutical approach of male infertility by teratocarcinoma derived germ cells. Hum Mol Genet, 2004, 13 (14): 1451-1460.
[22] Yu Z, Ji P, Cao J, et al. Dazl promotes germ cell differentiation from embryonic stem cells. J Mol Cell Biol, 2009, 1 (2): 93-103.
[23] Kee K, Angeles VT, Flores M,et al.Human DAZL, DAZ and BOULE genes modulate primordial germ-cell and haploid gamete formation. Nature,2009, 462 (7270): 222-225.
[24] Panula S, Medrano JV, Kee K, et al. Human germ cell differentiation from fetal- and adult-derived induced pluripotent stem cells. Hum Mol Genet, 2011, 20 (4): 752-762.
[25] Hayashi K, Ohta H, Kurimoto K, et al. Reconstitution of the mouse germ cell specification pathway in culture by pluripotent stem cells. Cell, 2011, 146 (4): 519-532.
[26] Park T S, Galic Z, Conway A E, et al. Derivation of primordial germ cells from human embryonic and induced pluripotent stem cells is significantly improved by coculture with human fetal gonadal cells. Stem Cells, 2009, 27 (4): 783-795.
[27] da Silva Meirelles L, Chagastelles P C, Nardi N B. Mesenchymal stem cells reside in virtually all post-natal organs and tissues. J Cell Sci ,2006, 119 (11): 2204-2213.
[28] Ma M, Shan B E, Liu W, et al. Immunoregulatory function of rat bone marrow mesenchymal stem cells on spleen mononuclearcell. Xi Bao Yu Fen Zi Mian Yi Xue Za Zhi ,2009, 25 (12): 1119-1122.
[29] Gu J Y, Shi XL, Zhang Y, et al. Study on the effects and mechanisms of bone marrow mesenchymal stem cells on porcine primary hepatocyte culture in vitro. Zhonghua Gan Zang Bing Za Zhi, 2009, 17 (11): 867-871.
[30] Rodriguez A M, Elabd C, Amri E Z, et al. The human adipose tissue is a source of multipotent stem cells. Biochimie, 2005, 87 (1): 125-128.
[31] Hua J, Pan S, Yang C, et al. Derivation of male germ cell-like lineage from human fetal bone marrow stem cells. Reprod Biomed Online, 2009, 19 (1): 99-105.
[32] Nayernia K, Lee JH, Lako M, et al. Retraction in vitro derivation of human sperm from embryonic stem cells. Stem Cells ,2009.10(2):1089.
[33] Schrans-Stassen B H vdKH, de Rooij D G, van Pelt AM. Differential expression of c-kit in mouse undifferentiated and differentiating type A spermatogonia. Endocrinology,1999, 140 (5894).
[34] Anderson E L, Baltus A E, Roepers-Gajadien H L, et al. Stra8 and its inducer, retinoic acid, regulate meiotic initiation in both spermatogenesis and oogenesis in mice. Proc Natl Acad Sci U S A, 2008, 105 (39): 14976-14980.
[35] Gibbs G M, Orta G, Reddy T, et al. Cysteine-rich secretory protein 4 is an inhibitor of transient receptor potential M8 with a role in establishing sperm function. Proc Natl Acad Sci U S A 2011; 108 (17): 7034-7039.
[36] Nolan M A, Wu L, Bang H J, et al. Identification of rat cysteine-rich secretory protein 4 (Crisp4) as the ortholog to human CRISP1 and mouse Crisp4. Biol Reprod, 2006, 74 (5): 984-991.
[37] Kratzschmar J, Haendler B, Eberspaecher U, et al. The human cysteine-rich secretory protein (CRISP) family. Primary structure and tissue distribution of CRISP-1, CRISP-2 and CRISP-3. Eur J Biochem, 1996, 236 (3): 827-836.
[38] Kawano N, Kang W, Yamashita M, et al. Mice lacking two sperm serine proteases, ACR and PRSS21, are subfertile, but the mutant sperm are infertile in vitro. Biol Reprod, 2010, 83 (3): 359-369.
[39] Perez A M, Fernandez S, Cordoba M. Acrosin activity regulation by protein Kinase C and tyrosine kinase in bovine sperm acrosome exocytosis induced by lysophosphatidylcholine. Reproduction in Domestic Animals, 201247(6):915-920.
[40] Sada A, Suzuki A, Suzuki H, et al. The RNA-binding protein NANOS2 is required to maintain murine spermatogonial stem cells. Science 2009; 325 (5946): 1394-1398.
[41] Julaton VT, Reijo RA. NANOS3 function in human germ cell development. Human Molecular Genetics 2011; 20 (11): 2238-2250.
[42] Sato T, Aiyama Y, Ishii-Inagaki M, et al. Cyclical and patch-like GDNF distribution along the basal surface of Sertoli cells in mouse and hamster testes. PloS one 2011; 6 (12): e28367.
[43] Johnston D S, Olivas E, DiCandeloro P, et al. Stage-specific changes in GDNF expression by rat Sertoli cells: a possible regulator of the replication and differentiation of stem spermatogonia. Biology Of Reproduction 2011; 85 (4): 763-769.
[44] Sada A, Hasegawa K, Pin PH, et al. NANOS2 Acts Downstream of glial cell Line-Derived neurotrophic factor signaling to suppress differentiation of spermatogonial stem cells. Stem Cells 2012; 30 (2): 280-291.
[45] Zhang S, Sun J, Pan S, et al. Retinol (vitamin A) maintains self-renewal of pluripotent male germline stem cells (mGSCs) from adult mouse testis. Journal Of Cellular Biochemistry 2011; 112 (4): 1009-1021.
[46] Bowles J, Knight, D, Smith, C, et al. Sex-specific regulation of retinoic acid levels in developing mouse gonads determines germ cell fate. Science 2006; 312: 596-600.
[47] Bowles J, Koopman P. Retinoic acid, meiosis and germ cell fate in mammals. Development 2007; 134 (19): 3401-3411.
[1] QIAN Yu,DING Xiao-yu,LIU Zhi-qiang,YUAN Zeng-qiang. An Efficient Monoclonal Establishment Method of Genetically Modified Human Pluripotent Stem Cells[J]. China Biotechnology, 2021, 41(8): 33-41.
[2] WANG Yu-xuan,CHEN Ting,ZHANG Yong-liang. Research Progress on the Biological Function of MiR-148[J]. China Biotechnology, 2021, 41(7): 74-80.
[3] LI Kai-xiu,SI Wei. Progress in the Treatment of Inflammatory Bowel Diseases by Exosomes Derived from Mesenchymal Stem Cells[J]. China Biotechnology, 2021, 41(7): 66-73.
[4] WANG Hui-lin,ZHOU Kai-qiang,ZHU Hong-yu,WANG Li-jing,YANG Zhong-fan,XU Ming-bo,CAO Rong-yue. Research Progress of Human Coagulation Factor VII and the Recombinant Expression Systems[J]. China Biotechnology, 2021, 41(2/3): 129-137.
[5] ZHAO Jiu-mei,WANG Zhe,LI Xue-ying. Role of Signal Pathways and Related Factors Regulating Cartilage Formation in Bone Differentiation of Bone Marrow Mesenchymal Stem Cells[J]. China Biotechnology, 2021, 41(10): 62-72.
[6] CHEN Fei,WANG Xiao-bing,XU Zeng-hui,QIAN Qi-jun. Molecular Mechanism and Clinical Research Progress of Mesenchymal Stem Cells in the Treatment of Diabetes Mellitus[J]. China Biotechnology, 2020, 40(7): 59-69.
[7] DAI Qi-nan,ZHANG Jing-hong. Advances in Molecular Mechanisms Related to Tumor Multi-drug Resistance, Autophagy, DNA Repair and Tumor Stem Cells[J]. China Biotechnology, 2020, 40(4): 69-77.
[8] YUAN Ya-kun,LIU Guang-yang,LIU Yong-jun,XIE Ya-fang,WU Hao. Comparison of Research and Clinical Transformation on Mesenchymal Stem Cells between China and the US[J]. China Biotechnology, 2020, 40(4): 97-107.
[9] YANG Dan,TIAN Hai-shan,LI Xiao-kun. Research Progress of Fibroblast Growth Factor 5[J]. China Biotechnology, 2020, 40(3): 117-124.
[10] QIU Dan-dan,LU Cai-xia,DAI Jie-jie. Application of Hepatocyte-like Cells Derived from Induced Pluripotent Stem Cells in HCV Infection Model[J]. China Biotechnology, 2020, 40(11): 67-72.
[11] CHEN Li-jun,QU Jing-jing,XIANG Charlie. Therapeutic Potentials, Clinical Studies, and Application Prospects of Mesenchymal Stem Cells in 2019 Novel Coronavirus (COVID-19)[J]. China Biotechnology, 2020, 40(11): 43-55.
[12] ZHU Yongzhao,TAO Jin,REN Meng-meng,XIONG Ran,HE Ya-qin,ZHOU Yu,LU Zhen-hui,DU Yong,YANG Zhi-hong. Autophagy Protects Against Apoptosis of Human Placental Mesenchymal Stem Cells of Fetal Origin Induced by Tumor Necrosis Fator-α[J]. China Biotechnology, 2019, 39(9): 62-67.
[13] Shuang SU,Yong-jie JIN,Rui-jing HUANG,Jian LI,Han-mei XU. The Research Progress of Perfusion Mammalian Cell Culture[J]. China Biotechnology, 2019, 39(3): 105-110.
[14] Yue-lei FAN,Jiao LU,Da-ming CHEN,Kai-yun MAO. Strategies for Stem Cell Patent Evaluation and Patent Transfer and Transformation[J]. China Biotechnology, 2019, 39(1): 99-106.
[15] Wen-wen SHI,Lei ZHANG. Current Research of Micro Mechanical Environmental Effects on Mesenchymal Stem Cells’ Differentiation[J]. China Biotechnology, 2018, 38(8): 76-83.