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Published on: November 17, 2020
Immunopathophysiology of pediatric CNS inflammatory demyelinating diseases
Amit Bar-Or1, Rogier Q Hintzen2, Russell C Dale2
1From the Neuroimmunology Unit and Experimental Therapeutics Program (A.B.-O.), Montreal Neurological Institute, McGill University, Montreal, Quebec, Canada; Department of Neurology (R.Q.H.), MS Centre ErasMS, Neurology, Erasmus MC, Rotterdam, the Netherlands; Neuroimmunology Group (R.C.D.), Institute for Neuroscience and Muscle Research, the Children's Hospital at Westmead, University of Sydney, Australia; Department of Pediatric Neurology (K.R.), Witten/Herdecke University, Children's Hospital Datteln, Datteln, Germany; Department of Neuropathology (W.B.), University Medical Center Göttingen, Georg-August-University, Göttingen, Germany; and Partners Pediatric MS Center (T.C.), Massachusetts General Hospital, Harvard Medical School, Boston, MA. amit.bar-or@mcgill.ca.
Insights
Understanding pediatric central nervous system (CNS) demyelinating diseases, like multiple sclerosis (MS), is crucial for diagnosis and treatment. Research highlights shared risk factors with adult MS but notes unique developmental considerations in children.
Area of Science:
- Neuroimmunology
- Pediatric Neurology
- Demyelinating Diseases
Background:
- Pediatric-onset central nervous system (CNS) demyelinating diseases require distinct understanding due to ongoing immune and nervous system maturation.
- Shared genetic and environmental risk factors suggest pediatric and adult multiple sclerosis (MS) may be similar conditions.
- Chronic CNS inflammation is indicated by cerebrospinal fluid (CSF) analysis in pediatric MS.
Purpose of the Study:
- To elucidate pathophysiologic mechanisms distinguishing pediatric-onset MS from other demyelinating conditions.
- To improve diagnostics and therapeutic strategies for pediatric CNS demyelinating diseases.
- To understand the impact of early-life CNS inflammation on developing neurological and immune systems.
Main Methods:
- Analysis of cerebrospinal fluid (CSF) in pediatric-onset MS patients.
- Investigation of T cell subset abnormalities (effector and regulatory) and immune senescence.
- Documentation of CNS-directed antibodies (e.g., anti-myelin, anti-Kir4.1, anti-aquaporin-4, anti-myelin oligodendrocyte glycoprotein) using validated cell-based assays.
Main Results:
- Emerging evidence implicates T cell subset abnormalities and potential immune senescence in pediatric MS.
- While CNS-directed antibodies are present, their pathophysiologic role in pediatric MS remains unclear.
- Antibodies against aquaporin-4 and myelin oligodendrocyte glycoprotein may indicate distinct neuromyelitis optica spectrum disorder or disease phenotypes, respectively.
Conclusions:
- Elucidating the immunobiology and neurobiology of pediatric CNS demyelination is vital due to its impact on brain development.
- Distinguishing between monophasic and chronic forms of pediatric CNS demyelination requires validated biological measures.
- Further research is needed to clarify the role of specific antibodies and immune dysregulation in pediatric demyelinating diseases.
Abstract:
Elucidating pathophysiologic mechanisms underlying the spectrum of pediatric-onset CNS demyelinating diseases, particularly those that may distinguish multiple sclerosis (MS) from other entities, promises to both improve diagnostics and guide more-informed therapeutic decisions. Observations that pediatric- and adult-onset MS share the same genetic and environmental risk factors support the view that these conditions represent essentially the same illness manifesting at different ages. Nonetheless, special consideration must be given when CNS inflammation manifests in early life, at a time when multiple organs (including immune and nervous systems) are actively maturing. CSF analysis in pediatric-onset MS points to chronic CNS inflammation, supported by observations from limited pathologic material available for study. Emerging results implicate abnormalities in both effector and regulatory T cell subsets, and potentially immune senescence, in children with MS. Although CNS-directed antibodies (including antibodies recognizing myelin antigens; Kir4.1) can be documented in pediatric-onset MS, their pathophysiologic significance (as in adults) remains unclear. This is in contrast to the presence of serum and/or CSF antibodies recognizing aquaporin-4, which, when measured using validated cell-based assays, supports the diagnosis of a neuromyelitis optica spectrum disorder, distinct from MS. Presence of anti-myelin oligodendrocyte glycoprotein antibodies documented with similar cell-based assays may also be associated with pathophysiologically distinct disease phenotypes in children. The substantial impact of pediatric-onset MS on normal brain development and function underscores the importance of elucidating both the immunobiology and neurobiology of disease. Ongoing efforts are aimed at developing and validating biological measures that define pathophysiologically distinct monophasic and chronic forms of pediatric CNS demyelination.
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