2021
Immunomodifying and neuroprotective effects of noscapine: Implications for multiple sclerosis, neurodegenerative, and psychiatric disorders
Altinoz M, Guloksuz S, Ozpinar A. Immunomodifying and neuroprotective effects of noscapine: Implications for multiple sclerosis, neurodegenerative, and psychiatric disorders. Chemico-Biological Interactions 2021, 352: 109794. PMID: 34963564, DOI: 10.1016/j.cbi.2021.109794.Peer-Reviewed Original ResearchMeSH KeywordsAlzheimer DiseaseAmyotrophic Lateral SclerosisAnimalsBradykininHistamine AntagonistsHumansImmunomodulating AgentsIon ChannelsMental DisordersMultiple SclerosisNeurodegenerative DiseasesNeuroprotective AgentsNoscapineOligodendrogliaParkinsonian DisordersReceptors, G-Protein-CoupledSignal TransductionStrokeConceptsNeuroprotective effectsMultiple sclerosisInflammatory transcription factor NF-κBIschemic brain damageNeonatal rat pupsPilot clinical studyAmyotrophic lateral sclerosisTranscription factor NF-κBCortical neuronal cellsSignificant therapeutic efficacyFactor NF-κBBitter taste receptorsHistaminergic systemBrain damageRat pupsClinical studiesSK channelsLateral sclerosisParkinson's diseaseAnxiolytic activityPsychiatric disordersChemical injuryNF-κBAnimal modelsPsychiatric diseases
2013
Neuroprotective Role of a Brain-Enriched Tyrosine Phosphatase, STEP, in Focal Cerebral Ischemia
Deb I, Manhas N, Poddar R, Rajagopal S, Allan AM, Lombroso PJ, Rosenberg GA, Candelario-Jalil E, Paul S. Neuroprotective Role of a Brain-Enriched Tyrosine Phosphatase, STEP, in Focal Cerebral Ischemia. Journal Of Neuroscience 2013, 33: 17814-17826. PMID: 24198371, PMCID: PMC3818554, DOI: 10.1523/jneurosci.2346-12.2013.Peer-Reviewed Original ResearchConceptsIschemic brain damageStriatal-enriched phosphataseBrain damageNeuroprotective roleBrain injuryP38 MAPK activationSustained p38 MAPK activationIschemic brain injuryFocal cerebral ischemiaOnset of reperfusionHypoxia-reoxygenation injuryP38 MAPKMAPK activationIschemic strokeNeurological deficitsCerebral ischemiaStroke therapyKO miceRat modelP38 MAPK pathwayCultured neuronsNeuronal culturesGenetic deletionSecondary activationInjury
1988
Magnesium Inhibits Ischemia Induced Calcium Accumulation in Hilar Neurones: Possible Effect of Nmda-Receptor
Benveniste H, Diemer N. Magnesium Inhibits Ischemia Induced Calcium Accumulation in Hilar Neurones: Possible Effect of Nmda-Receptor. Advances In Behavioral Biology 1988, 35: 377-377. DOI: 10.1007/978-1-4684-5562-5_40.Peer-Reviewed Original ResearchHilar neuronsCA 1 pyramidal cellsN-methyl-D-aspartate receptorsCalcium accumulationIschemic brain damageExcessive calcium accumulationIschemic changesIschemic damageBrain damageNMDA receptorsPyramidal cellsSelective vulnerabilityHilar neuronesCalcium influxIrreversible morphological changesCalcium conductanceIschemiaMorphological damageExcessive accumulationNeuronsPivotal roleMorphological changesHoursPossible effectsDamage
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