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Mitoxantrone repression of astrocyte activation: relevance to multiple sclerosis
Samuel A Burns1, R Lee Archer, Janet A Chavis
1Department of Neurobiology and Developmental Sciences, University of Arkansas for Medical Sciences, 4301 West Markham Street, Slot 846, Little Rock, AR 72205, United States.
Abstract:
Mitoxantrone has been approved by the FDA for the treatment of multiple sclerosis (MS). However, the mechanisms by which mitoxantrone modulates MS are largely unknown. Activated astrocytes produce nitric oxide (NO), TNF-α, and IL-1β, molecules which can be toxic to central nervous system (CNS) cells including oligodendrocytes, thus potentially contributing to the pathology associated with MS. MCP-1 is a chemokine believed to modulate the migration of monocytes to inflammatory lesions present in the CNS of MS patients. IL-12 and IL-23 have been demonstrated to play critical roles in the pathogenesis of experimental autoimmune encephalomyelitis (EAE), an animal model of MS, by contributing to the development of CD4(+) T cell lineages termed Th1 and Th17, respectively. The current study demonstrates that mitoxantrone inhibits lipopolysachharide (LPS) induction of NO, TNF-α, IL-1β, and MCP-1 production by primary astrocytes. Mitoxantrone also inhibited IL-12 and IL-23 production by these cells. Furthermore, mitoxantrone suppressed the expression of C-reactive protein (CRP). Finally, we demonstrate that mitoxantrone suppressed LPS induction of NF-κB DNA-binding activity, suggesting a novel mechanism by which mitoxantrone suppresses the expression of proinflammatory molecules. Collectively, these studies demonstrate that mitoxantrone represses astrocyte production of potentially cytotoxic molecules, as well as molecules capable of altering T-cell phenotype. These in vitro studies suggest mechanisms by which mitoxantrone may modulate inflammatory diseases including MS.
Insights
Mitoxantrone suppresses astrocyte production of inflammatory molecules linked to multiple sclerosis (MS) pathogenesis. This suggests novel mechanisms for how this FDA-approved drug may treat MS by reducing central nervous system inflammation.
Area of Science:
- Neuroimmunology
- Pharmacology
Background:
- Multiple sclerosis (MS) is a chronic inflammatory disease of the central nervous system (CNS).
- Activated astrocytes contribute to MS pathology by releasing cytotoxic molecules.
- The precise mechanisms of mitoxantrone's therapeutic effects in MS remain largely unknown.
Purpose of the Study:
- To investigate the in vitro mechanisms by which mitoxantrone modulates astrocyte-mediated inflammation relevant to MS.
- To determine if mitoxantrone affects the production of key inflammatory mediators by astrocytes.
Main Methods:
- Primary astrocytes were treated with lipopolysaccharide (LPS) with or without mitoxantrone.
- Production of nitric oxide (NO), TNF-α, IL-1β, MCP-1, IL-12, and IL-23 was measured.
- C-reactive protein (CRP) expression and NF-κB DNA-binding activity were assessed.
Main Results:
- Mitoxantrone significantly inhibited LPS-induced production of NO, TNF-α, IL-1β, MCP-1, IL-12, and IL-23 by astrocytes.
- Mitoxantrone suppressed the expression of CRP.
- Mitoxantrone reduced LPS-induced NF-κB DNA-binding activity in astrocytes.
Conclusions:
- Mitoxantrone represses the production of astrocyte-derived inflammatory and cytotoxic molecules implicated in MS.
- Mitoxantrone's anti-inflammatory effects may involve the suppression of NF-κB signaling.
- These findings provide novel insights into the mechanisms underlying mitoxantrone's efficacy in treating inflammatory CNS diseases like MS.
