Carbohydrate antigens expressed on stem cells and early embryonic cells (original) (raw)

References

  1. Marshak DR, Gardner RL, Gottlieb D (Eds.), Stem Cell Biology (Cold Spring Harbor Laboratory Press, Cold Spring Harbor, 2001).
    Google Scholar
  2. Muramatsu T, Developmentally regulated expression of cell sur-face carbohydrates during mouse embryogenesis, J Cell Biochem 36, 1–14 (1988).
    Article PubMed CAS Google Scholar
  3. Solter D, Knowles BB, Monoclonal antibody defining a stage-specific mouse embryonic antigen (SSEA-1), Proc Natl Acad Sci USA 75, 5565–9 (1978).
    Article PubMed CAS Google Scholar
  4. Gooi HC, Feizi T, Kapadia A, Knowles BB, Solter D, Evans MJ, Stage-specific embryonic antigen involves _α_1–3 fucosylated type 2 blood group chains, Nature 292,156–8 (1981).
    Article PubMed CAS Google Scholar
  5. Sato M, Yonezawa S, Uehara H, Arita Y, Sato E, Muramatsu T, Differential distribution of receptors for two fucose-recognizing lectins in embryos and adult tissues of the mouse, Differentiation 30, 211–9 (1986).
    PubMed CAS Google Scholar
  6. Muramatsu T, Gachelin G, Damonneville M, Delarbre C, Jacob F, Cell surface carbohydrates of embryonal carcinoma cells: Polysac-chaidic side chains of F9 antigens and receptors to two lectins, FBP and PNA, Cell 18, 183–91 (1979).
    Article PubMed CAS Google Scholar
  7. Miyauchi T, Kanekura T, Yamaoka A, Ozawa M, Miyazawa S, Muramatsu T, Basigin, a new, broadly distributed member of the immunoglobulin superfamily has strong homology with both the immunoglobulin V domain and the _β_-chain of major histocompat-ibility complex class II antigen, J Biochem 107, 316–23 (1990).
    PubMed CAS Google Scholar
  8. Muramatsu T, Gachelin G, Nicolas JF, Condamine H, Jakob H, Jacob F, Carbohydrate structure and cell differentiation: Unique properties of fucosyl glycopeptides isolated from embryonal car-cinoma cells, Proc Natl Acad Sci USA 75, 2315–9 (1978).
    Article PubMed CAS Google Scholar
  9. Muramatsu H, Ishihara H, Miyauchi T, Gachelin G, Fujisaki T, Tejima S, Muramatsu T, Glycoprotein-bound large carbohydrates of early embryonic cells: Structural characteristic of the glycan isolated from F9 embryonal carcinoma cells, J Biochem 94, 799–810 (1983).
    PubMed CAS Google Scholar
  10. Kapadia A, Feizi T, Evans MJ, Changes in the expression and polarization of blood group I and i antigens in post-implantation embryos and teratocarcinomas of mouse associated with cell differentiation, Exp Cell Res 131, 185–95 (1981).
    Article PubMed CAS Google Scholar
  11. Henderson JK, Draper JS, Baillie HS, Fishel S, Thomson JA, Moore H, Andrews PW, Preimplantation human embryos and em-bryonic stem cells show comparable expression of stage-specific embryonic antigens, Stem Cells 20, 329–37 (2002).
    Article PubMed CAS Google Scholar
  12. Yoshida-Noro C, Heasman J, Goldstone K, Vickers L, Wylie C, Expression of the Lewis group carbohydrate antigens during Xenopus development, Glycobiology 9, 1323–30 (1999).
    Article PubMed CAS Google Scholar
  13. Sasado T, Kani S, Washimi K, Ozato K, Wakamatsu Y, Expression of murine early embryonic antigens, SSEA-1 and antigenic deter-minant of EMA-1, in embryos and ovarian follicles of a teleost medaka (Oryzias latipes), Dev Growth Differ 41, 293–302 (1999).
    Article PubMed CAS Google Scholar
  14. Wianny F, Perreau C, Hochereau de Reviers MT, Proliferation and differentiation of porcine inner cell mass and epiblast in vitro, Biol Reprod 57, 756–64 (1997).
    Article PubMed CAS Google Scholar
  15. Choi SJ, Shim H, Anderson GB, lack of stage-specific embryonic antigen-1 expression by bovine embryos and primordial germ cells, J Dairy Sci 82, 516–9 (1999).
    Article PubMed CAS Google Scholar
  16. Thomson JA, Marshall VS, Primate embryonic stem cells, Curr Top Dev Biol 38, 133–65 (1998).
    Article PubMed CAS Google Scholar
  17. Muramatsu H, Muramatsu T, Avner P, Biochemical properties of the high-molecular-weight glycopeptides released from the cell surface of human teratocarcinoma cells, Cancer Res 42, 1749–52 (1982).
    PubMed CAS Google Scholar
  18. Fukuda MN, Dell A, Oates JE, Fukuda M,Embryonal lactosamino-glycan. The structure of branched lactosaminoglycans with novel disialosyl (sialyl _α_2–9 sialyl) terminals isolated from PA1 human embryonal carcinoma cells, J Biol Chem 260, 6623–31 (1985).
    PubMed CAS Google Scholar
  19. Thorpe SJ, Bellairs R, Feizi T, Developmental patterning of car-bohydrate antigens during early embryogenesis of the chick: Ex-pression of antigens of the poly-N-acetyllactosamine series, Development 102,193–210 (1988).
    PubMed CAS Google Scholar
  20. Kannagi R, Cochran, NA, Ishigami F, Hakomori S, Andrew PW, Knowles BB, Solter D, Stage-specific embryonic antigen (SSEA-3 and-4) are epitopes of a unique globoseries ganglioside isolated from human teratocacinoma cells, EMBO J 2, 2355–61 (1983).
    PubMed CAS Google Scholar
  21. Badcock G, Pigott C, Goepel J, Andrews PW, The human embry-onal carcinoma marker antigen TRA–1–60 is a sialylated keratan sulfate proteoglycan, Cancer Res 59, 4715–19 (1999).
    PubMed CAS Google Scholar
  22. Kamada Y, Muramatsu H, Arita Y, Yamada T, Muramatsu T. Struc-tural studies on a binding site for Dolichos biflorus agglutinin in the small intestine of the mouse, J Biochem 109, 178–183 (1991).
    PubMed CAS Google Scholar
  23. Yoshinaga K, Muramatsu H, Muramatsu T, Immunohistochemical localization of the carbohydrate antigen 4C9 in the mouse embryo: A reliable marker of mouse primordial germ cells, Differentiation 48, 75–82 (1991).
    PubMed CAS Google Scholar
  24. Tanaka SS, Toyooka Y, Akasu R, Katoh-Fukui Y, Nakahara Y, Suzuki R, Yokoyama M, Noce T, The mouse homolog of Drosophila Vasa is required for the development of male germ cells, Genes Dev 14, 841–53 (2000).
    PubMed CAS Google Scholar
  25. Yoshimizu T, Obinata M, Matsui Y, Stage-specific tissue and cell interactions play key roles in mouse germ cell specification, Development 128, 481–90 (2001).
    PubMed CAS Google Scholar
  26. Kimura T, Suzuki A, Fujita Y, Yomogida K, Lomeli H, Asada N, Ikeuchi M, Nagy A, Mak TW, Nakano T, Conditional loss of PTEN leads to testicular teratoma and enhances em-bryonic germ cell production, Development 130, 1691–700 (2003).
    Article PubMed CAS Google Scholar
  27. Takeuchi A, Mishina Y, Miyaishi O, Kojima E, Hasegawa T, Isobe K, Heterozygosity with respect to Zfp148 causes complete loss of fetal germ cells during mouse embryogenesis, Nat Genet. 33, 172–6 (2003).
    Article PubMed CAS Google Scholar
  28. Shamblott MJ, Axelman J, Wang S, Bugg EM, Littlefield JW, Donovan PJ, Blumenthal PD, Huggins GR, Gearhart JD, Derivation of pluripotent stem cells from cultured human primordial germ cells, Proc Natl Acad Sci USA 95, 13726–31 (1998).
    Article PubMed CAS Google Scholar
  29. Park TS, Han JY, Derivation and characterization of pluripotent embryonic germ cells in chicken, Mol Reprod Dev 56, 475–82 (2000).
    Article PubMed CAS Google Scholar
  30. Kuhholzer B, Baguisi A, Overstrom EW, Long-term culture and characterization of goat primordial germ cells, Theriogenology 53, 1071–9 (2000).
    Article PubMed CAS Google Scholar
  31. D'Costa S, Petitte JN, Characterization of stage-specific em-bryonic antigen-1 (SSEA-1) expression during early devel-opment of the turkey embryo, Int J Dev Biol 43, 349–56 (1999).
    PubMed Google Scholar
  32. Capela A, Temple S, LeX/ssea-1 is expressed by adult mouse CNS stem cells, identifying them as nonependymal, Neuron 35, 865–75 (2002).
    Article PubMed Google Scholar
  33. Kim M, Morshead CM, Distinct populations of forebrain neural stem and progenitor cells can be isolated using side-population analysis, J Neurosci 23,10703–9 (2003).
    Google Scholar
  34. Henry K, Michael RS, Anthony HB, Michael JY, Surface markers expressed by multipotent human and mouse neural progenitor cells incude tetraspanins and non-protein epitopes, Neurosci Lett 312, 180–2 (2001).
    Article Google Scholar
  35. Doyonnas R, Yi-Hsin Chan J, Butler LH, Rappold I, Lee-Prudhoe JE, Zannettino AC, Simmons PJ, Buhring HJ, Levesque JP, Watt SM, CD164 monoclonal antibodies that block hemopoietic pro-genitor cell adhesion and proliferation interact with the first mucin domain of the CD164 receptor, J Immunol 165, 840–51 (2000).
    PubMed CAS Google Scholar
  36. Masuzawa Y, Miyauchi T, Hamanoue M, Ando S, Yoshida J, Takao S, Shimazu H, Adachi T, Muramatsu T, A novel core protein as well as polymorphic epithelial mucin carry peanut agglutinin bind-ing sites in human gastric carcinoma cells: Sequence analysis and examination of gene expression, J Biochem 112, 609–15 (1992).
    PubMed CAS Google Scholar
  37. Greenberg AW, Kerr WG, Hammer DA, Relationship between selectin-mediated rolling of hematopoietic stem and progenitor cells and progression in hematopoietic development Blood 95, 478–86 (2000).
    PubMed CAS Google Scholar
  38. Fenderson BA, Zehavi U, Hakomori S, A multivalent lacto-N-fucopentaose III-lysyllysine conjugate decompacts preimplanta-tion mouse embryos, while the free oligosaccharide is ineffective, J Exp Med 160, 1591–6 (1984).
    Article PubMed CAS Google Scholar
  39. Pincet F, Le Bouar T, Zhang Y, Esnault J, Mallet JM, Perez E, Sinay P, Ultraweak sugar-sugar interactions for transient cell adhesion, Biophys J 80, 1354–8 (2001).
    Article PubMed CAS Google Scholar
  40. Nomoto S, Muramatsu H, Ozawa M, Suganuma T, Tashiro M, Muramatsu T, An anti-carbohydrate monoclonal antibody inhibits cell-substratum adhesion of F9 embryonal carcinoma cells, Exp. Cell Res 164, 49–62 (1986).
    Article PubMed CAS Google Scholar
  41. Sudou A, Ozawa M, Muramatsu T, Lewis X structure increases cell substratum adhesion in L cells, J Biochem 117, 271–5 (1995).
    PubMed CAS Google Scholar
  42. Sudou A, Muramatsu H, Kaname T, Kadomatsu K, Muramatsu T, Le x structure enhances myocardial differentiation from embryonic stem cells, Cell Struct Funct 22, 247–51 (1997).
    Article PubMed CAS Google Scholar
  43. Huang RP, Ozawa M, Kadomatsu K, Muramatsu T, Embigin, a member of the immunoglobulin superfamily expressed in embry-onic cells, enhances cell-substratum adhesion, Dev Biol 155, 307–14 (1993).
    Article PubMed CAS Google Scholar
  44. Fan QW, Kadomatsu K, Uchimura K, Muramatsu T, Embigin/ basigin subgroup of the immunoglobulin superfamily: Differ-ent modes of expression during mouse embryogenesis and correlated expression with carbohydrate antigenic markers, Dev Growth Differ 40, 277–86 (1998).
    Article PubMed CAS Google Scholar
  45. Muramatsu T, Miyauchi T, Basigin (CD147): A multifunctional transmembrane protein involved in reproduction, neural function, inflammation and tumor invasion, Histol Histopathol 18, 981–7 (2003).
    PubMed CAS Google Scholar
  46. Reddy A, Caler EV, Andrews NW, Plasma membrane repair is mediated by Ca2+ regulated exocytosis of lysosomes, Cell 106, 157–69 (2001).
    Article PubMed CAS Google Scholar
  47. Chen G, Kurosawa N, Muramatsu T, A novel variant form of murine _β_-1,6-N-acetylglucosaminyltransferase forming branches in poly-N-acetyllactosamines, Glycobiology 10, 1001–11 (2000).
    Article PubMed CAS Google Scholar
  48. Carlsson SR, Roth J, Piller F, Fukuda M, Isolation and characteri-zation of human lysosomal membrane glycoproteins, h-lamp-1 and h-lamp-2. Major sialoglycoproteins carrying polylactosaminogly-can, J Biol Chem 263, 18911–9 (1988).
    PubMed CAS Google Scholar

Download references