Home LiteratureArticle Details
PMID: 10603622 Published · ppublish English Journal Article Review

Therapeutic strategies in multiple sclerosis. II. Long-term repair.

Scolding N

Abstract

Spontaneous myelin repair in multiple sclerosis (MS) provides a striking example of the brain's inherent capacity for sustained and stable regenerative tissue repair--but also clearly emphasizes the limitations of this capacity; remyelination ultimately fails widely in many patients, and disability and handicap accumulate. The observation of endogenous partial myelin repair has raised the possibility that therapeutic interventions designed to supplement or promote remyelination might have a useful and significant impact both in the short term, in restoring conduction, and in the long term, in safeguarding axons. Therapeutic remyelination interventions must involve manipulations to either the molecular or the cellular environment within lesions; both depend crucially on a detailed understanding of the biology of the repair process and of those glia implicated in spontaneous repair, or capable of contributing to exogenous repair. Here we explore the biology of myelin repair in MS, examining the glia responsible for successful remyelination, oligodendrocytes and Schwann cells, their 'target' cells, neurons and the roles of astrocytes. Options for therapeutic remyelinating strategies are reviewed, including glial cell transplantation and treatment with growth factors or other soluble molecules. Clinical aspects of remyelination therapies are considered--which patients, which lesions, which stage of the disease, and how to monitor an intervention--and the remaining obstacles and hazards to these approaches are discussed.

MeSH Terms
Astrocytes/physiology Growth Substances/therapeutic use Humans Immunization, Passive Multiple Sclerosis/physiopathology,therapy Myelin Sheath/physiology Nerve Regeneration Neuroglia/physiology,transplantation Neurons/physiology Time Factors
Chemicals
Growth Substances
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Scolding N
Department of Neurology, Addenbrooke's Hospital, Cambridge, UK.
References (111)
111 references, click to expand
  1. Axonal damage in acute multiple sclerosis lesions.
    Brain. 1997 Mar;120 ( Pt 3):393-9 PMID: 9126051
  2. Growth factors and remyelination in the CNS.
    Histol Histopathol. 1997 Apr;12(2):459-66 PMID: 9151135
  3. Strategies for repair and remyelination in demyelinating diseases.
    Curr Opin Neurol. 1997 Jun;10(3):193-200 PMID: 9229125
  4. Remyelination in multiple sclerosis.
    Mult Scler. 1997 Apr;3(2):133-6 PMID: 9291167
  5. Remyelination of the central nervous system.
    Mult Scler. 1996 Jul;1(6):388-92 PMID: 9345424
  6. Management of multiple sclerosis.
    N Engl J Med. 1997 Nov 27;337(22):1604-11 PMID: 9371858
  7. Axonal pathology in demyelinating diseases.
    Ann Neurol. 1999 Jan;45(1):6-7 PMID: 9894870
  8. Identification of A2B5-positive putative oligodendrocyte progenitor cells and A2B5-positive astrocytes in adult human white matter.
    Neuroscience. 1999 Mar;89(1):1-4 PMID: 10051212
  9. Adult brain retains the potential to generate oligodendroglial progenitors with extensive myelination capacity.
    Proc Natl Acad Sci U S A. 1999 Mar 30;96(7):4089-94 PMID: 10097168
  10. Behavioural consequences of oligodendrocyte progenitor cell transplantation into experimental demyelinating lesions in the rat spinal cord.
    Eur J Neurosci. 1999 May;11(5):1508-14 PMID: 10215903
  11. The neurobiology of Schwann cells.
    Brain Pathol. 1999 Apr;9(2):293-311 PMID: 10219747
  12. Polyclonal immunoglobulins for intravenous use do not influence the behaviour of cultured oligodendrocytes.
    J Neuroimmunol. 1999 May 3;96(2):228-33 PMID: 10337921
  13. Ultrastructural study of remyelination in an experimental lesion in adult cat spinal cord.
    J Biophys Biochem Cytol. 1961 May;10:67-94 PMID: 13688845
  14. Electron microscopic features of multiple sclerosis lesions.
    Brain. 1965 Dec;88(5):937-52 PMID: 5864468
  15. Requirements for Schwann cell migration within CNS environments: a viewpoint.
    Int J Dev Neurosci. 1993 Oct;11(5):641-9 PMID: 8116476
  16. Preliminary evidence from magnetic resonance imaging for reduction in disease activity after lymphocyte depletion in multiple sclerosis.
    Lancet. 1994 Jul 30;344(8918):298-301 PMID: 7914262
  17. Transplantation of an oligodendrocyte cell line leading to extensive myelination.
    Proc Natl Acad Sci U S A. 1994 Nov 22;91(24):11616-20 PMID: 7972113
  18. Human fetal tissue from spontaneous abortions as potential sources of donor tissue for cell transplantation therapy.
    Transplant Proc. 1994 Dec;26(6):3500 PMID: 7998247
  19. Patterns of oligodendroglia pathology in multiple sclerosis.
    Brain. 1994 Dec;117 ( Pt 6):1311-22 PMID: 7820568
  20. Studies of myelin formation after transplantation of human Schwann cells into the severe combined immunodeficient mouse.
    Exp Neurol. 1994 Nov;130(1):41-52 PMID: 7821395
  21. Grafting immortalized neurons to the CNS.
    Curr Opin Neurobiol. 1994 Oct;4(5):742-51 PMID: 7849531
  22. Proliferation and differentiation of fetal human oligodendrocytes in culture.
    J Neurosci Res. 1994 Oct 15;39(3):260-72 PMID: 7869419
  23. Phenotypic and cell cycle properties of human oligodendrocytes in vitro.
    Brain Res. 1995 Feb 20;672(1-2):159-69 PMID: 7749738
  24. Differentiation of the O-2A progenitor cell line CG-4 into oligodendrocytes and astrocytes following transplantation into glia-deficient areas of CNS white matter.
    Glia. 1995 Jan;13(1):39-44 PMID: 7751054
  25. Glial-cell transplantation and plasticity in the O-2A lineage--implications for CNS repair.
    Trends Neurosci. 1995 Mar;18(3):151-6 PMID: 7754527
  26. A proliferative adult human oligodendrocyte progenitor.
    Neuroreport. 1995 Feb 15;6(3):441-5 PMID: 7766839
  27. Clinical correlates of [18F]fluorodopa uptake in five grafted parkinsonian patients.
    Ann Neurol. 1995 Oct;38(4):580-8 PMID: 7574454
  28. Selective expansion and long-term culture of human Schwann cells from sural nerve biopsies.
    Ann Neurol. 1995 Oct;38(4):674-8 PMID: 7574467
  29. Characterization of the signaling interactions that promote the survival and growth of developing retinal ganglion cells in culture.
    Neuron. 1995 Oct;15(4):805-19 PMID: 7576630
  30. Purification and expansion of human Schwann cells in vitro.
    Nat Med. 1995 Jan;1(1):80-3 PMID: 7584959
  31. Human Schwann cells in vitro. I. Failure to differentiate and support neuronal health under co-culture conditions that promote full function of rodent cells.
    J Neurobiol. 1995 Oct;28(2):171-89 PMID: 8537823
  32. Identification of post-mitotic oligodendrocytes incapable of remyelination within the demyelinated adult spinal cord.
    J Neuropathol Exp Neurol. 1997 Nov;56(11):1191-201 PMID: 9370229
  33. Axonal transection in the lesions of multiple sclerosis.
    N Engl J Med. 1998 Jan 29;338(5):278-85 PMID: 9445407
  34. Embryonic Schwann cell development: the biology of Schwann cell precursors and early Schwann cells.
    J Anat. 1997 Nov;191 ( Pt 4):501-5 PMID: 9449069
  35. Purification and characterization of adult oligodendrocyte precursor cells from the rat optic nerve.
    J Neurosci. 1998 Jun 15;18(12):4627-36 PMID: 9614237
  36. Olfactory ensheathing glia: properties and function.
    Brain Res Bull. 1998 Jun;46(3):175-87 PMID: 9667810
  37. Self-renewing canine oligodendroglial progenitor expanded as oligospheres.
    J Neurosci Res. 1998 Oct 15;54(2):181-90 PMID: 9788277
  38. Xenogeneic cell therapy: current progress and future developments in porcine cell transplantation.
    Cell Transplant. 1998 Nov-Dec;7(6):525-39 PMID: 9853581
  39. Oligodendrocyte progenitors are present in the normal adult human CNS and in the lesions of multiple sclerosis.
    Brain. 1998 Dec;121 ( Pt 12):2221-8 PMID: 9874475
  40. Human Schwann cells in vitro. II. Myelination of sensory axons following extensive purification and heregulin-induced expansion.
    J Neurobiol. 1995 Oct;28(2):190-201 PMID: 8537824
  41. The fate of human glial cells following transplantation in normal rodents and rodent models of neurodegenerative disease.
    Brain Res. 1995 Oct 9;695(1):25-36 PMID: 8574644
  42. Multipotential stem cells from the adult mouse brain proliferate and self-renew in response to basic fibroblast growth factor.
    J Neurosci. 1996 Feb 1;16(3):1091-100 PMID: 8558238
  43. Survival and differentiation of rat and human epidermal growth factor-responsive precursor cells following grafting into the lesioned adult central nervous system.
    Exp Neurol. 1996 Feb;137(2):376-88 PMID: 8635554
  44. Immunoglobulins reactive with myelin basic protein promote CNS remyelination.
    Neurology. 1996 Feb;46(2):538-45 PMID: 8614528
  45. Clonal and population analyses demonstrate that an EGF-responsive mammalian embryonic CNS precursor is a stem cell.
    Dev Biol. 1996 Apr 10;175(1):1-13 PMID: 8608856
  46. Insulin-like growth factor-I given subcutaneously reduces clinical deficits, decreases lesion severity and upregulates synthesis of myelin proteins in experimental autoimmune encephalomyelitis.
    Life Sci. 1996;58(16):1301-6 PMID: 8614286
  47. Restoration of normal conduction properties in demyelinated spinal cord axons in the adult rat by transplantation of exogenous Schwann cells.
    J Neurosci. 1996 May 15;16(10):3199-208 PMID: 8627358
  48. Transplantation of human fetal tissue from spontaneous abortions to a rodent model of Parkinson's disease.
    Cell Transplant. 1996 Jan-Feb;5(1):69-75 PMID: 8665079
  49. A monoclonal autoantibody which promotes central nervous system remyelination is highly polyreactive to multiple known and novel antigens.
    J Neuroimmunol. 1996 Mar;65(1):11-9 PMID: 8642059
  50. Recent results using CAMPATH-1 antibodies to control GVHD and graft rejection.
    Bone Marrow Transplant. 1996 Mar;17(3):305-8 PMID: 8704678
  51. Growth factor stimulation triggers apoptotic cell death in mature oligodendrocytes.
    J Neurosci Res. 1996 Apr 1;44(1):1-11 PMID: 8926624
  52. Natural autoantibodies.
    Curr Opin Immunol. 1995 Dec;7(6):812-8 PMID: 8679125
  53. Glial cell transplantation and remyelination of the central nervous system.
    Neuropathol Appl Neurobiol. 1996 Apr;22(2):87-100 PMID: 8732184
  54. Monoclonal autoantibody SCH94.03, which promotes central nervous system remyelination, recognizes an antigen on the surface of oligodendrocytes.
    J Neurosci Res. 1996 Feb 1;43(3):273-281 PMID: 8714516
  55. Myelination by transplanted human and mouse central nervous system tissue after long-term cryopreservation.
    Acta Neuropathol. 1996;91(1):82-8 PMID: 8773151
  56. Failure to achieve remyelination of demyelinated rat axons following transplantation of glial cells obtained from the adult human brain.
    Neuropathol Appl Neurobiol. 1996 Jun;22(3):199-206 PMID: 8804021
  57. Regeneration of myelin in multiple sclerosis. The role of mesenchymal cells in such regeneration and in myelin formation in the peripheral nervous system.
    Neurology. 1966 Apr;16(4):364-72 PMID: 4160080
  58. Schwann cells and regenerated peripheral myelin in multiple sclerosis: an ultrastructural study.
    Neurology. 1975 Aug;25(8):713-6 PMID: 1171404
  59. Remyelination in multiple sclerosis.
    Ann Neurol. 1979 Jan;5(1):22-31 PMID: 426466
  60. Remyelination by cells introduced into a stable demyelinating lesion in the central nervous system.
    J Neurol Sci. 1980 Apr;46(1):63-81 PMID: 7373344
  61. Chronic demyelination inhibits remyelination in the central nervous system. An analysis of contributing factors.
    Lab Invest. 1980 Oct;43(4):382-7 PMID: 7442125
  62. A glial progenitor cell that develops in vitro into an astrocyte or an oligodendrocyte depending on culture medium.
    Nature. 1983 Jun 2-8;303(5916):390-6 PMID: 6304520
  63. Schwann cell remyelination of demyelinated axons in spinal cord multiple sclerosis lesions.
    Ann Neurol. 1983 Sep;14(3):339-46 PMID: 6195956
  64. Spinal cord multiple sclerosis lesions in Japanese patients: Schwann cell remyelination occurs in areas that lack glial fibrillary acidic protein (GFAP).
    Acta Neuropathol. 1985;65(3-4):217-23 PMID: 2579518
  65. Schwann cell and oligodendrocyte remyelination in lysolecithin-induced lesions in irradiated rat spinal cord.
    J Neurol Sci. 1985 Feb;67(2):143-59 PMID: 3981217
  66. Proliferating bipotential glial progenitor cells in adult rat optic nerve.
    Nature. 1986 Feb 6-12;319(6053):499-502 PMID: 3945333
  67. Studies on the development, antigenic phenotype and function of human glial cells in tissue culture.
    Brain. 1986 Dec;109 ( Pt 6):1261-77 PMID: 3539257
  68. Remyelination by oligodendrocytes stimulated by antiserum to spinal cord.
    J Neuropathol Exp Neurol. 1987 Jan;46(1):84-95 PMID: 2432195
  69. Blockade of electrical activity promotes the death of mammalian retinal ganglion cells in culture.
    Proc Natl Acad Sci U S A. 1986 Dec;83(24):9774-8 PMID: 3025849
  70. Tissue culture observations relevant to the study of axon-Schwann cell interactions during peripheral nerve development and repair.
    J Exp Biol. 1987 Sep;132:21-34 PMID: 3323401
  71. Remyelination in the central nervous system and the peripheral nervous system.
    Adv Neurol. 1988;47:215-54 PMID: 3278518
  72. Immortalized rat Schwann cells produce tumours in vivo.
    J Neurocytol. 1988 Aug;17(4):521-9 PMID: 3193129
  73. Axonal dystrophy as a consequence of long-term demyelination.
    Lab Invest. 1989 May;60(5):714-25 PMID: 2716284
  74. Type 1 astrocytes inhibit myelination by adult rat oligodendrocytes in vitro.
    J Neurosci. 1989 Oct;9(10):3371-9 PMID: 2795128
  75. Immunoglobulins promote remyelination in the central nervous system.
    Ann Neurol. 1990 Jan;27(1):12-7 PMID: 2301922
  76. The origin of remyelinating oligodendrocytes in antiserum-mediated demyelinative optic neuropathy.
    Brain. 1990 Aug;113 ( Pt 4):953-73 PMID: 2397394
  77. Regulation of oligodendrocyte development by insulin-like growth factors and cyclic nucleotides.
    Ann N Y Acad Sci. 1990;605:101-9 PMID: 2176441
  78. Myelin formation following transplantation of normal fetal glia into myelin-deficient rat spinal cord.
    J Neurocytol. 1990 Oct;19(5):718-30 PMID: 2077113
  79. Repair of central nervous system lesions by glial cells immortalised with an oncogene-carrying retrovirus.
    Schweiz Arch Neurol Psychiatr. 1991;142(2):102-4 PMID: 1710374
  80. Extensive proliferation of peripheral type myelin in necrotic spinal cord lesions of multiple sclerosis.
    J Neurol Sci. 1991 Apr;102(2):163-9 PMID: 2072116
  81. Transplanted type-1 astrocytes facilitate repair of demyelinating lesions by host oligodendrocytes in adult rat spinal cord.
    J Neurocytol. 1991 May;20(5):420-30 PMID: 1869880
  82. Remyelination of demyelinated rat axons by transplanted mouse oligodendrocytes.
    Glia. 1991;4(3):305-13 PMID: 1832658
  83. Transplantation of glial cells into the CNS.
    Trends Neurosci. 1991 Aug;14(8):323-7 PMID: 1721734
  84. Pre-oligodendrocytes from adult human CNS.
    J Neurosci. 1992 Apr;12(4):1538-47 PMID: 1556607
  85. Developmental appearance, antigenic profile, and proliferation of glial cells of the human embryonic spinal cord: an immunocytochemical study using dissociated cultured cells.
    Glia. 1992;5(3):171-81 PMID: 1375191
  86. Conduction properties of central nerve fibers remyelinated by Schwann cells.
    Brain Res. 1992 Mar 6;574(1-2):178-92 PMID: 1638392
  87. Cooperation between PDGF and FGF converts slowly dividing O-2Aadult progenitor cells to rapidly dividing cells with characteristics of O-2Aperinatal progenitor cells.
    J Cell Biol. 1992 Aug;118(4):889-900 PMID: 1323567
  88. Type 1 astrocytes fail to inhibit Schwann cell remyelination of CNS axons in the absence of cells of the O-2A lineage.
    Dev Neurosci. 1992;14(2):85-92 PMID: 1396178
  89. Differential myelinogenic capacity of specific developmental stages of the oligodendrocyte lineage upon transplantation into hypomyelinating hosts.
    J Neurosci Res. 1993 Jan;34(1):1-13 PMID: 7678656
  90. Multiple sclerosis: remyelination of nascent lesions.
    Ann Neurol. 1993 Feb;33(2):137-51 PMID: 8434875
  91. Repair of demyelinated lesions by transplantation of purified O-2A progenitor cells.
    Nature. 1993 Apr 1;362(6419):453-5 PMID: 8464477
  92. Insulin-like growth factor I increases brain growth and central nervous system myelination in transgenic mice.
    Neuron. 1993 Apr;10(4):729-40 PMID: 8386530
  93. Multiple sclerosis: remyelination in acute lesions.
    J Neuropathol Exp Neurol. 1993 May;52(3):199-204 PMID: 7684075
  94. Molecular profile of reactive astrocytes--implications for their role in neurologic disease.
    Neuroscience. 1993 May;54(1):15-36 PMID: 8515840
  95. The Polkinghorne Report on Fetal Research: nice recommendations, shame about the reasoning.
    J Med Ethics. 1993 Jun;19(2):114-20 PMID: 8331636
  96. Reciprocal Schwann cell-axon interactions.
    Curr Opin Neurobiol. 1993 Oct;3(5):683-93 PMID: 8260817
  97. In vitro and in vivo analysis of a rat bipotential O-2A progenitor cell line containing the temperature-sensitive mutant gene of the SV40 large T antigen.
    Eur J Neurosci. 1993 Oct 1;5(10):1247-60 PMID: 8275227
  98. Transplantation of glial cells enhances action potential conduction of amyelinated spinal cord axons in the myelin-deficient rat.
    Proc Natl Acad Sci U S A. 1994 Jan 4;91(1):53-7 PMID: 8278406
  99. Myelin formation by mouse glia in myelin-deficient rats treated with cyclosporine.
    J Neurocytol. 1993 Nov;22(11):967-77 PMID: 8301327
  100. Schwann cell-like myelination following transplantation of an olfactory bulb-ensheathing cell line into areas of demyelination in the adult CNS.
    Glia. 1996 Jul;17(3):217-24 PMID: 8840163
  101. Regulation of oligodendrocyte development and CNS myelination by growth factors: prospects for therapy of demyelinating disease.
    Brain Pathol. 1996 Jul;6(3):313-29 PMID: 8864287
  102. Is there a neural stem cell in the mammalian forebrain?
    Trends Neurosci. 1996 Sep;19(9):387-93 PMID: 8873356
  103. Gene transfer to the mammalian brain using neural stem cells: a focus on trophic factors, neuroregeneration, and cholinergic neuron systems.
    Clin Neurosci. 1995-1996;3(5):301-9 PMID: 8914797
  104. The immunological barriers to xenotransplantation.
    Crit Rev Immunol. 1996;16(4):331-58 PMID: 8954254
  105. Myelination of the canine central nervous system by glial cell transplantation: a model for repair of human myelin disease.
    Nat Med. 1997 Jan;3(1):54-9 PMID: 8986741
  106. Transplanting oligodendrocyte progenitors into the adult CNS.
    J Anat. 1997 Jan;190 ( Pt 1):23-33 PMID: 9034879
  107. Schwann cell invasion of the central nervous system of the myelin mutants.
    J Anat. 1997 Jan;190 ( Pt 1):35-49 PMID: 9034880
  108. Histological evidence of fetal pig neural cell survival after transplantation into a patient with Parkinson's disease.
    Nat Med. 1997 Mar;3(3):350-3 PMID: 9055867
  109. Glial lineages and myelination in the central nervous system.
    J Anat. 1997 Feb;190 ( Pt 2):161-200 PMID: 9061442
  110. The effects of the growth factor-antagonist, trapidil, on remyelination in the CNS.
    Neuropathol Appl Neurobiol. 1997 Feb;23(1):50-8 PMID: 9061690
  111. Stem cells in the central nervous system.
    Science. 1997 Apr 4;276(5309):66-71 PMID: 9082987
Article Info
Journal
Philosophical transactions of the Royal Society of London. Series B, Biological sciences
Abbr.
Philos Trans R Soc Lond B Biol Sci
ISSN
0962-8436
Published
1999-10-29
Pages
1711-20
Language
English
Region
England
NLM ID
7503623
PMCID
PMC1692681
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com