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PMID: 11923434 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Pathological CNS autoimmune disease triggered by traumatic spinal cord injury: implications for autoimmune vaccine therapy.

Jones TB, Basso DM, Sodhi A, Pan JZ, Hart RP, MacCallum RC, Lee S, Whitacre CC, Popovich PG

Abstract

Lymphocytes respond to myelin proteins after spinal cord injury (SCI) and may contribute to post-traumatic secondary degeneration. However, there is increasing evidence that autoreactive T-lymphocytes may also convey neuroprotection and promote functional recovery after CNS injury. To clarify the role of myelin autoreactive lymphocytes after SCI, we performed contusion injuries in the thoracic spinal cord of transgenic (Tg) mice in which >95% of all CD4+ T-lymphocytes are reactive with myelin basic protein (MBP). We observed significantly impaired recovery of locomotor and reflex function in Tg mice compared with non-Tg (nTg) littermates. Measures of functional impairment in Tg mice correlated with significantly less white matter at the injury site, and morphometric comparisons of injured Tg and nTg spinal cords revealed increased rostrocaudal lesion expansion (i.e., secondary degeneration) in Tg mice. Rostrocaudal to the impact site in SCI-nTg mice, demyelination was restricted to the dorsal funiculus, i.e., axons undergoing Wallerian degeneration. The remaining white matter appeared normal. In contrast, lymphocytes were colocalized with regions of demyelination and axon loss throughout the white matter of SCI-Tg mice. Impaired neurological function and exacerbated neuropathology in SCI-Tg mice were associated with increased intraspinal production of proinflammatory cytokine mRNA; neurotrophin mRNA was not elevated. These data suggest that endogenous MBP-reactive lymphocytes, activated by traumatic SCI, can contribute to tissue injury and impair functional recovery. Any neuroprotection afforded by myelin-reactive T-cells is likely to be an indirect effect mediated by other non-CNS-reactive lymphocytes. Similar to the Tg mice in this study, a subset of humans that are genetically predisposed to autoimmune diseases of the CNS may be adversely affected by vaccine therapies designed to boost autoreactive lymphocyte responses after CNS trauma. Consequently, the safe implementation of such therapies requires that future studies define the mechanisms that control T-cell function within the injured CNS.

MeSH Terms
Animals Autoimmunity/immunology Axons/pathology Behavior, Animal CD4-Positive T-Lymphocytes/immunology,pathology Cytokines/genetics,metabolism Demyelinating Autoimmune Diseases, CNS/etiology,pathology,physiopathology Disease Progression Hindlimb/innervation,physiopathology Image Processing, Computer-Assisted Immunotherapy, Active/adverse effects Lymphoid Tissue/metabolism,pathology Mice Mice, Transgenic Myelin Basic Protein/immunology Nerve Growth Factors/genetics,metabolism Polymerase Chain Reaction RNA, Messenger/metabolism Receptors, Antigen, T-Cell/genetics,immunology Recovery of Function Reflex Spinal Cord/pathology Spinal Cord Injuries/complications,pathology,physiopathology
Chemicals
Cytokines Myelin Basic Protein Nerve Growth Factors RNA, Messenger Receptors, Antigen, T-Cell
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Jones T Bucky
The Neuroscience Graduate Studies Program, School of Allied Medical Professions, The Ohio State University College of Medicine and Public Health, Columbus, Ohio 43210, USA.
Basso D Michele
Sodhi Ajeet
Pan Jonathan Z
Hart Ronald P
MacCallum Robert C
Lee Sunhee
Whitacre Caroline C
Popovich Phillip G
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Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
1529-2401
Published
2002-04-01
Pages
2690-700
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6758306
Subset
IM
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