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The microglial potassium channels Kv1.3 and KCa3.1 as therapeutic targets for neu

The microglial potassium channels Kv1.3 and KCa3.1 as therapeutic targets for neu
小胶质细胞钾通道 Kv1.3 和 KCa3.1 作为 neu 的治疗靶点
批准号:
8730669
负责人:
HEIKE WULFF
金额:
$31.13万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-07-01 至 2016-06-30
关键词:
AffectAlzheimer&aposs DiseaseAnti-Inflammatory AgentsAnti-inflammatoryAreaAtherosclerosisAutoimmune DiseasesBacterial InfectionsBinding SitesBiological AvailabilityBrainCalciumCalcium SignalingCellsContact DermatitisDataDelayed HypersensitivityDrug KineticsDrug TargetingEncephalitisEvaluationExperimental Autoimmune EncephalomyelitisGeneticGlutamatesGoalsGrantHourHumanHyperthermiaHypoxiaImmune systemImmunohistochemistryImmunosuppressive AgentsIn Situ Nick-End LabelingIn VitroInfarctionInfiltrationInflammationInflammation MediatorsInflammatoryInflammatory Bowel DiseasesInhibitory Concentration 50Insulin-Dependent Diabetes MellitusIschemic StrokeKnockout MiceKv1.3 potassium channelLaboratoriesLeadLearningLymphocyteMapsMeasuresMediatingMembrane PotentialsMicrogliaMiddle Cerebral Artery OcclusionMinocyclineMotorMultiple SclerosisNeurologicNeuronsOptic Nerve TransectionsOralPathogenesisPathologyPatientsPerformancePhagocytosisPharmaceutical ChemistryPharmaceutical PreparationsPlayPositioning AttributePotassium ChannelPrimatesProductionRattusReactionReactive Oxygen SpeciesRecovery of FunctionReperfusion TherapyReportingResearchRespiratory BurstRetinaRetinal Ganglion CellsRodentRoleSecondary toStaining methodStainsStrokeT-Cell ActivationTestingTherapeuticTimeToxic effectTranslatingTransplantationVaccinesVascular DiseasesVirus DiseasesWild Type MouseWorkbasecyclooxygenase 2cytokinedesignexpectationimprovedin vivoinhibitor/antagonistkillingslipophilicitymacrophagemigrationneurogenesisneuronal survivalneurotoxicneurotoxicityneurotrophic factornovelpreventprogramsresearch studyresponsesmall moleculetherapeutic evaluationtherapeutic targettranslational studyvoltageweek trial

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DESCRIPTION (provided by applicant): In addition to directly causing neuronal damage ischemic stroke elicits a delayed neuroinflammatory response that is characterized by lymphocyte infiltration, hyperthermia and robust microglia activation. "Reactive" microglia in particular contribute to this "secondary damage" by producing inflammatory cytokines, reactive oxygen species, NO, and cyclooxygenase-2 reaction products. However, activated microglia might also be neuroprotective by releasing neurotrophic factors and phagocytosing cellular debris. The goal of microgliatargeted therapies therefore should be to reduce the neurotoxic effects of activated microglia while at the same time maintaining their beneficial functions. We here hypothesize, that blockers of the microglial K+ channels Kv1.3 and KCa3.1 might be able to do exactly this based on the preliminary data presented in this application. We previously designed potent and selective small molecule inhibitors for both channels, PAP-1 for Kv1.3 and TRAM-34 for KCa3.1, and demonstrated that these compounds can prevent or treat various autoimmune diseases and inflammatory conditions in rodents such as contact dermatitis, type-1 diabetes, inflammatory bowel disease, atherosclerosis and EAE. More recently we made the exciting observation that our KCa3.1 blocker TRAM-34 reduces infarct area and neurological deficit scores following ischemic stroke in rats even if treatment is commenced 12 hours after reperfusion. Another strong rationale for our study is a report that TRAM-34 does not prevent microglia from phagocytosing damaged neurons but increases the number of surviving retinal ganglion cells following optic nerve transection in rats by reducing the production and/or secretion of neurotoxic molecules in the retina. Taken together with previous work from our laboratory and other groups implicating both Kv1.3 and KCa3.1 in microglia mediated neuronal killing, these results suggest Kv1.3 and KCa3.1 as novel targets for CNS pathologies involving inflammation. With the help of this grant we therefore intend to test the hypothesis that both channels constitute novel targets for the treatment of stroke. Under Aim-1 we will more rigorously evaluate Kv1.3 and KCa3.1 as targets for stroke by testing the effect of both pharmacological blockade and genetic deletion in reperfusion MCAO and by performing parallel in vitro studies to investigate the role Kv1.3 and KCa3.1 in microglia functions. Under Aim-2 we will use our expertise in medicinal chemistry to design a less lipophilic and more brain penetrant small molecule Kv1.3 inhibitor than our existing lead compound PAP-1 (IC50 2 nM). We further will resynthesize a brain-penetrant KCa3.1 inhibitor, which was abandoned by Bayer, when the company pulled out of stroke research. Under Aim-3 we will directly compare the new Kv1.3 and KCa3.1 blockers to minocycline in a 4-week trial by assessing in vivo cytokine production, neurogenesis and functional recovery. As a first step towards translating our findings to humans, we will further obtain brain sections from stroke patients and controls and perform immunohistochemistry for KCa3.1, Kv1.3, and microglia activation markers.
期刊论文(34)
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会议论文
NS6180, a new K(Ca) 3.1 channel inhibitor prevents T-cell activation and inflammation in a rat model of inflammatory bowel disease.
NS6180 是一种新型 K(Ca) 3.1 通道抑制剂,可预防炎症性肠病大鼠模型中的 T 细胞活化和炎症。
DOI: 10.1111/j.1476-5381.2012.02143.x
发表时间: 2013
期刊: British journal of pharmacology
影响因子: 7.3
作者: [Strøbæk,D, Brown,DT, Jenkins,DP, Chen,Y-J, Coleman,N, Ando,Y, Chiu,P, Jørgensen,S, Demnitz,J, Wulff,H, Christophersen,P]
通讯作者: Christophersen,P
Structure-activity relationship exploration of Kv1.3 blockers based on diphenoxylate.
基于地芬诺酯的 Kv1.3 阻滞剂构效关系探索。
DOI: 10.1016/j.bmcl.2012.09.080
发表时间: 2012
期刊: Bioorganic & medicinal chemistry letters
影响因子: 2.7
作者: [Nguyen,William, Howard,BrittanyL, Jenkins,DavidP, Wulff,Heike, Thompson,PhilipE, Manallack,DavidT]
通讯作者: Manallack,DavidT
K(Ca)3.1 channel-blockade attenuates airway pathophysiology in a sheep model of chronic asthma.
K(Ca)3.1 通道阻断可减弱慢性哮喘绵羊模型的气道病理生理学。
DOI: 10.1371/journal.pone.0066886
发表时间: 2013
期刊: PloS one
影响因子: 3.7
作者: [VanDerVelden,Joanne, Sum,Grace, Barker,Donna, Koumoundouros,Emmanuel, Barcham,Garry, Wulff,Heike, Castle,Neil, Bradding,Peter, Snibson,Kenneth]
通讯作者: Snibson,Kenneth
DOI: 10.1038/cddis.2016.73
发表时间: 2016-04-07
期刊: Cell death & disease
影响因子: 9
作者: [Grimaldi A, D'Alessandro G, Golia MT, Grössinger EM, Di Angelantonio S, Ragozzino D, Santoro A, Esposito V, Wulff H, Catalano M, Limatola C]
通讯作者: Limatola C
20
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    Microglial K+ Channels in Ischemic Stroke