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Inflammatory Mediators and Stroke: New Opportunities for Novel Therapeutics

Journal of Cerebral Blood Flow & Metabolism · 1999 · Vol. 19(8) · pp. 819–834

Abstract

Contrary to previous dogmas, it is now well established that brain cells can produce cytokines and chemokines, and can express adhesion molecules that enable an in situ inflammatory reaction. The accumulation of neutrophils early after brain injury is believed to contribute to the degree of brain tissue loss. Support for this hypothesis has been drawn from many studies where neutrophil-depletion blockade of endothelial-leukocyte interactions has been achieved by various techniques. The inflammation reaction is an attractive pharmacologic opportunity, considering its rapid initiation and progression over many hours after stroke and its contribution to evolution of tissue injury. While the expression of inflammatory cytokines that may contribute to ischemic injury has been repeatedly demonstrated, cytokines may also provide "neuroprotection" in certain conditions by promoting growth, repair, and ultimately, enhanced functional recovery. Significant additional basic work is required to understand the dynamic, complex, and time-dependent destructive and protective processes associated with inflammation mediators produced after brain injury. The realization that brain ischemia and trauma elicit robust inflammation in the brain provides fertile ground for discovery of novel therapeutic agents for stroke and neurotrauma. Inhibition of the mitogen-activated protein kinase (MAPK) cascade via cytokine suppressive anti-inflammatory drugs, which block p38 MAPK and hence the production of interleukin-1 and tumor necrosis factor-alpha, are most promising new opportunities. However, spatial and temporal considerations need to be exercised to elucidate the best opportunities for selective inhibitors for specific inflammatory mediators.

Neuroinflammation and Neurodegeneration MechanismsImmune Response and InflammationNeutrophil, Myeloperoxidase and Oxidative MechanismsNeuroprotectionInflammationChemokineMedicineTumor necrosis factor alphaNeuroscienceCytokineMAPK/ERK pathwayIschemiaProinflammatory cytokine

MeSH terms

AnimalsBrainCerebrovascular DisordersHumansInflammationInterleukin-1Tumor Necrosis Factor-alphaCell Adhesion MoleculesCytokinesCalcium-Calmodulin-Dependent Protein KinasesChemokinesMitogen-Activated Protein Kinasesp38 Mitogen-Activated Protein Kinases
Citations
931
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26.80
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References
198
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Inflammatory Mediators and Stroke: New Opportunities for Novel Therapeutics
Journal of Cerebral Blood Flow & Metabolism · 1999 · 931 citations
Mitogen-activated protein kinase pathways
Current Opinion in Cell Biology · 1997 · 2,492 citations
Calphostin C (UCN-1028C), a novel microbial compound, is a highly potent and specific inhibitor of protein kinase C
Biochemical and Biophysical Research Communications · 1989 · 1,115 citations
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