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T cell responses to allogeneic human mesenchymal stem cells: immunogenicity, tolerance, and suppression

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Journal of Biomedical Science

Abstract

Human mesenchymal stem cells (MSCs) were evaluated for their ability to activate allogeneic T cells in cell mixing experiments. Phenotypic characterization of MSCs by flow cytometry showed expression of MHC Class I alloantigens, but minimal expression of Class II alloantigens and costimulatory molecules, including CD80 (B7-1), CD86 (B7-2), and CD40. T cells purified from peripheral blood mononuclear cells (PBMCs) did not proliferate to allogeneic MSCs. Lack of response was not due to a deficiency of costimulation, since retroviral transduction of MSCs with either B7-1 or B7-2 costimulatory molecules did not result in lymphoproliferation. Although these results suggested that MSCs were immunologically inert or potentially tolerogenic, T cells cultured with MSCs produced IFN-γ and displayed secondary kinetics to restimulation with PBMCs, indicating alloantigen priming rather than tolerance induction by the MSCs. To determine whether MSCs suppressed alloreactive T cells, MSCs were added to primary mixed lymphocyte reaction (MLR) cultures. MSCs suppressed cell proliferation when added at the initiation of culture or when added to an ongoing MLR culture. Suppression was dose-dependent, genetically unrestricted, and occurred whether or not MSCs were pretreated with IFN-γ. MSCs in transwell chambers suppressed primary MLR cultures, indicating that suppression was mediated by soluble molecules. Analysis of cytokines in suppressed MLR cultures demonstrated up-regulation of IFN-γ and IL-10, and down-regulation of TNF-α production relative to control cultures. We conclude that MSCs can initiate activation of alloreactive T cells, but do not elicit T cell proliferative responses due to active suppressive mechanisms.

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References

  • A.J. Friedenstein R.K. Chailakhyan N.V. Latzinik A.F. Panasyuk I.V. Keilis-Borok (1974) ArticleTitleStromal cells responsible for transferring the microenvironment of hemopoietic tissues cloning in vitro and retransplantation in vivo Transplantation 17 331–340

    Google Scholar 

  • M.E. Owen (1988) ArticleTitleMarrow stromal cells J. Cell Sci 10 Suppl. 63–76

    Google Scholar 

  • M.F. Pittenger A.M. Mackay S.C. Beck R.K. Jaiswal R. Douglas J.D. Mosca M.A. Moorman D.W. Simonetti S Craig D.R. Marshak (1999) ArticleTitleMultilineage potential of adult human mesenchymal stem cells Science 284 143–147 Occurrence Handle10.1126/science.284.5411.143 Occurrence Handle1:CAS:528:DyaK1MXitlCnu7o%3D Occurrence Handle10102814

    Article  CAS  PubMed  Google Scholar 

  • R.J. Deans A.B. Moseley (2000) ArticleTitleMesenchymal stem cells Biology and potential clinical uses Exp. Hematol. 28 875–884

    Google Scholar 

  • D.J. Lenschow T.L. Walunas J.A. Bluestone (1996) ArticleTitleCD28/B7 system of T cell costimulation. Immunol.Annu.Rev 14 233–258

    Google Scholar 

  • M.K. Majumdar M. Keane-Moore D. Buyaner W.B. Hardy M.A. Moorman K.R. McIntosh J.D. Mosca (2003) ArticleTitleCharacterization functionality of cell surface molecules on human mesenchymal stem cells. J. Biomed Sci. 10 228–241

    Google Scholar 

  • N. Jaiswal S.E. Haynesworth A.I. Caplan S.P. Bruder (1997) ArticleTitleOsteogenic culture-expanded differentiation of purified human mesenchymal stem cells in vitro. J.Cell Biochem. 64 295–312

    Google Scholar 

  • K. Majumdar M.K. Lee D. Buyaner J.K. Hendricks M.F. Pittenger J.D. Mosca (2001) ArticleTitleHuman differentiation mesenchymal stem cells maintain transgene expression during expansion Mol.Ther. 3 857–866

    Google Scholar 

  • V.A. Theobald J.D. Lauer F.A. Kaplan K.B Baker M. Rosenberg (1993) ArticleTitle“Neutral allografts”–lack of allogeneic stimulation by cultured human cells expresssing MHC class I and class II antigens Transplantation 55 128–133

    Google Scholar 

  • T.F. Gajewski F.W. Fitch (1988) ArticleTitleAnti-proliferative effect of IFN-γ in immune regulation. I. IFN-γ inhibits the proliferation of Th2 but not Th1 murine helper T lymphocyte clones J.Immunol 140 4245–4252

    Google Scholar 

  • H. Skjodt T Moller S.F. Freiesleben (1989) ArticleTitleHuman osteoblast-like cells expressing MHC class II determinants stimulate allogeneic and autologous peripheral blood mononuclear cells and function as antigen-presenting cells Immunology 68 416–420

    Google Scholar 

  • M. Azuma D. Ito H. Yagita K. Okumura J.H. Phillips L.L Lanier C. Somoza (1993) ArticleTitleB70 is a second ligand for CTLA-4 and CD28 Nature 366 76–79

    Google Scholar 

  • M. Isobe H. Yagita K . Okumura A. Ihara (1992) ArticleTitleSpecific acceptance of cardiac allograft after treatment with antibodies to ICAM-1 and LFA-1 Science 255 1125–1127 Occurrence Handle1:CAS:528:DyaK38XhsV2luro%3D Occurrence Handle1347662

    CAS  PubMed  Google Scholar 

  • M. Di Nicola C. Carlo-Stella M. Magni M. Milanesi P.D. Longoni P. Matteucci S Grisanti A.M. Gianni (2002) ArticleTitleHuman bone marrow stromal cells suppress T-lymphocyte proliferation induced by cellular or nonspecific mitogenic stimuli Blood 99 3838–3843 Occurrence Handle10.1182/blood.V99.10.3838 Occurrence Handle1:CAS:528:DC%2BD38XjvVGnur0%3D Occurrence Handle11986244

    Article  CAS  PubMed  Google Scholar 

  • K. Le Blanc L. Tammik B. Sundberg S.E. Haynesworth O. Mesenchymal stimulate stem cells inhibit (2003) ArticleTitlemixed lymphocyte cultures and mitogenic responses independently of the major histocompatibility complex. Scand. J Immunol. 57 11–20

    Google Scholar 

  • J.A. Potian H. Aviv N.M. Ponzio J.S. Harrison P. Rameshwar (2003) ArticleTitleVeto-like activity of mesenchymal stem cells functional discrimination between cellular responses to alloantigen and recall antigens J. Immunol. 171 3426–3434

    Google Scholar 

  • W.T. Tse J.D. Pendleton W.M. Bever M.C. Egalka E.C. Guinan (2003) ArticleTitleSuppression of allogeneic T-cell proliferation by human marrow stromal cells implications in transplantation Transplantation 75 389–397

    Google Scholar 

  • A. Bartholomew C. Sturgeon M. Siatskas K. Ferrer K. McIntosh S. Patil W. Hardy S. Devine D. Ucker R. Deans A. Moseley R. Hoffman R. Mesenchymal (2002) ArticleTitlestem cells suppress lymphocyte proliferation in vitro and skin graft survival in vivo. and prolong Exp. Hematol. 30 42–48

    Google Scholar 

  • F. Djouad P. Plence C. Bony P. Tropel F. Apparailly J. Sany D Noel C. Jorgensen (2003) ArticleTitleImmunosuppressive effect of mesenchymal stem cells favors tumor growth in allogeneic animals. Blood 102 102 1837–3844

    Google Scholar 

  • Y. Shimabukuro S Murakami H. Okada (1992) ArticleTitleInterferon-gamma-dependent immunosuppressive effects of human gingival fibroblasts. Immunology 76 344–347

    Google Scholar 

  • J.J. Donnelly M.S. Xi J.H. Rockey (1993) ArticleTitleA soluble product of human corneal fibroblasts inhibits lymphocyte activation. Enhancement by interferon-gamma. Exp Eye Res. 56 157–165

    Google Scholar 

  • T.M. Kundig M.F. Bachmann C. DiPaolo J.J. Simard M. Battegay H. Lother A. Gessner K. Kuhlcke P.S. Ohashi H Hengartner et al. (1995) ArticleTitleFibroblasts as efficient antigen-presenting cells in lymphoid organs. Science 268 1343–1347

    Google Scholar 

  • J.M. Le J. Vilcek (1987) ArticleTitleAccessory function of human fibroblasts in mitogen-stimulated interferon-gamma production by T lymphocytes. Inhibition by interleukin 1 ant tumor necrosis factor J. Immunol. 139 3330–3337

    Google Scholar 

  • J.A. Smythe P.D. Fink G.J. Logan J. Lees P.B. Rowe I.E. Alexander (1999) ArticleTitleHuman fibroblasts transduced with CD80 or CD86 efficiently trans-costimulate CD4+CD8+T lymphocytes in HLA-restricted reactions implications for immune augmentation cancer therapy and autoimmunity J. Immunol 163 3239–3249

    Google Scholar 

  • M. Mielcarek L. Graf G. Johnson B. Torok-Storb (1998) ArticleTitleProduction of interleukin-10 by granulocyte colony-stimulating factor-mobilized blood products a mechanism for monocyte-mediated suppression of T-cell proliferation Blood 92 215–222

    Google Scholar 

  • F. Ruscetti L. Varesio A. Ochoa J. Ortaldo (1993) ArticleTitlePleiotropic effects of transforming growth factor-beta on cells of the immune system. Ann. NY Acad Sci. 685 488–500

    Google Scholar 

  • D.H. Munn M. Zhou J.T. Attwood I. Bondarev S.J. Conway B. Marshall C Brown A.L. Mellor (1998) ArticleTitlePrevention of allogeneic fetal rejection by tryptophan catabolism. Science 281 281 1191–1193

    Google Scholar 

  • S. Alsalameh B. Jahn A. Krause J.R. Kalden G.R. Burmester (1991) ArticleTitleAntigenicity and accessory cell function of human articular chondrocytes J. Rheumatol. 18 414–421

    Google Scholar 

  • A.N. Warrens J.Y. Zhang S. Sidhu D.J. Watt G. Lombardi C.A. Sewry R.I. Lechler (1994) ArticleTitleMyoblasts fail to stimulate T cells but induce tolerance Intl Immunol 6 847–853

    Google Scholar 

  • G. Camiran N.J. Caron I Asselin J.P. Tremblay (2001) ArticleTitleCombined immunosuppression of mycophenolate mofetil and FK506 for myoblast transplantation in mdx mice. Transplantation 72 72 38–44

    Google Scholar 

  • J. Malejczyk A. Osiecka A. Hyc S. Moskalewski (1991) ArticleTitleEffect of immunosuppression on rejection of cartilage formed by transplanted allogeneic rib chondrocytes in mice. Clin Orthop. 269 266–273

    Google Scholar 

  • M.P. Archambault K.R. McIntosh A.M. Butterfield K.J. Beggs C Cobbs S.J. Peter (2001) ArticleTitleAllogeneic mesenchymal stem cells persist and function in an immunocompetent non-human primate model [abstract]. Blood 98 98 648a

    Google Scholar 

  • K.W. Liechty T.C. MacKenzie A.F. Shaaban A. Radu A.M. Moseley R. Deans D.R. Marshak A.W. Flake (2000) ArticleTitleHuman mesenchymal stem cells engraft and demonstrate site-specific differentiation after in utero transplantation in sheep. Nat Med. 6 1282–1286

    Google Scholar 

  • T.C MacKenzie A.W. Flake (2000) ArticleTitleNew adventures in prenatal transplantation. Graft 3 3 315–318

    Google Scholar 

  • F. Fandrich X. Lin G.X. Chai M. Schulze D. Ganten M. Bader J. Holle D.S. Huang R. Parwaresch N. Zavazava B. Binas (2002) ArticleTitlePreimplantation-stage stem cells induce long-term allogeneic graft acceptance without supplementary host conditioning Nat. Med. 8 171–178

    Google Scholar 

  • D. Rondelli R.G. Andrews J.A. Hansen R. Ryncarz M.A Faerber C. Anasetti (1996) ArticleTitleand , Alloantigen presenting function of normal human CD34+ hematopoietic cells. Blood 88 88 2619–2625

    Google Scholar 

  • H. Lazarus P. Curtin S. Devine P. McCarthy K. Holland A Moseley A Bacigalupo (2000) ArticleTitleRole of mesenchymal stem cells (MSC) in allogeneic transplantation: Early phase I clinical results [abstract]. Blood 96 96 392a

    Google Scholar 

  • H.M Lazarus H.M Lazarus (2000) ArticleTitleCulture-expanded human marrow-derived MSCs in clinical hematopoietic stem cell transplantation. Graft 3 329–333

    Google Scholar 

  • K. McIntosh A. Bartholomew (2000) ArticleTitleStromal cell modulation of the immune system A potential role for mesenchymal stem cells. Graft 3 324–328

    Google Scholar 

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Correspondence to Kevin R McIntosh.

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Klyushnenkova, E., Mosca, J.D., Zernetkina, V. et al. T cell responses to allogeneic human mesenchymal stem cells: immunogenicity, tolerance, and suppression. J Biomed Sci 12, 47–57 (2005). https://doi.org/10.1007/s11373-004-8183-7

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  • DOI: https://doi.org/10.1007/s11373-004-8183-7

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