Transplantation of Mammalian Embryonic Stem Cells and Their Derivatives to Avian Embryos

被引:4
|
作者
Goldstein, Ronald S. [1 ]
机构
[1] Bar Ilan Univ, Mina & Everard Goodman Fac Life Sci, IL-52900 Ramat Gan, Israel
关键词
Human embryonic stem cells; Xenograft; Chick embryo; Migration; Differentiation; Neural crest; NEURAL CREST CELLS; CHICK-EMBRYO; DIRECTED DIFFERENTIATION; CHORIOALLANTOIC MEMBRANE; INTRAAMNIOTIC INJECTION; NERVOUS-SYSTEM; MOTOR-NEURONS; TUBE DEFECTS; MODEL; PROGENITORS;
D O I
10.1007/s12015-010-9161-2
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Xenografting of normal and transformed mammalian tissues and cells to chick embryos has been performed for almost 100 years. Embryonic stem cells, derived more than 25 years ago from murine, and more than 10 years ago from human blastocysts, have transformed many fields of biological research. There is a growing body of studies combining these two widely-used experimental systems. This review surveys those reports in which murine or human embryonic stem cells, or differentiated derivatives of these pluripotent stem cells, were transplanted to embryonated chick eggs. Many of these studies have utilized the unique characteristics of both experimental models to obtain answers to developmental questions that are difficult or impossible to approach with xenografting to adult rodents or tissue culture-only techniques.
引用
收藏
页码:473 / 483
页数:11
相关论文
共 50 条
  • [1] Transplantation of Mammalian Embryonic Stem Cells and Their Derivatives to Avian Embryos
    Ronald S. Goldstein
    Stem Cell Reviews and Reports, 2010, 6 : 473 - 483
  • [2] Chick embryos can form teratomas from microinjected mouse embryonic stem cells
    Haraguchi, Seiki
    Matsubara, Yuko
    Hosoe, Misa
    DEVELOPMENT GROWTH & DIFFERENTIATION, 2016, 58 (02) : 194 - 204
  • [3] Function of somite and somitocoele cells in the formation of the vertebral motion segment in avian embryos
    Huang, R
    Zhi, Q
    Neubuser, A
    Muller, TS
    BrandSaberi, B
    Christ, B
    Wilting, J
    ACTA ANATOMICA, 1996, 155 (04): : 231 - 241
  • [4] Signals Involved in Neural Differentiation of Human Embryonic Stem Cells
    Denham, Mark
    Dottori, Mirella
    NEUROSIGNALS, 2009, 17 (04) : 234 - 241
  • [5] Modeling Mammalian Gastrulation With Embryonic Stem Cells
    Siggia, Eric D.
    Warmflash, Aryeh
    HUMAN EMBRYONIC STEM CELLS IN DEVELOPMENT, 2018, 129 : 1 - 23
  • [6] Derivation of human embryonic stem cells from developing and arrested embryos
    Zhang, Xin
    Stojkovic, Petra
    Przyborski, Stefan
    Cooke, Michael
    Armstrong, Lyle
    Lako, Majlinda
    Stojkovica, Miodrag
    STEM CELLS, 2006, 24 (12) : 2669 - 2676
  • [7] Human embryonic stem cells: Possibilities for human cell transplantation
    Liew, CG
    Moore, H
    Ruban, L
    Shah, N
    Cosgrove, K
    Dunne, M
    Andrews, P
    ANNALS OF MEDICINE, 2005, 37 (07) : 521 - 532
  • [8] Combinational electroporation and transplantation approach to studying gene functions in avian embryos
    Wang, Xiaoyu
    Li, Yan
    Wang, Guang
    Muensterberg, Andrea
    Chuai, Manli
    Lee, KaHo Kenneth
    Wang, Lijing
    Yang, Xuesong
    CHINESE SCIENCE BULLETIN, 2014, 59 (07): : 616 - 624
  • [9] Human embryonic stem cells: Derivation, culture, and differentiation: A review
    Vazin, Tandis
    Freed, William J.
    RESTORATIVE NEUROLOGY AND NEUROSCIENCE, 2010, 28 (04) : 589 - 603
  • [10] Lineage choice and differentiation in mouse embryos and embryonic stem cells
    Loebel, DAF
    Watson, CM
    De Young, A
    Tam, PPL
    DEVELOPMENTAL BIOLOGY, 2003, 264 (01) : 1 - 14