Function and Expression of Connexins in the pre-Botzinger Complex
Function and Expression of Connexins in the pre-Botzinger Complex
批准号:
7186592
负责人:
JONATHAN D KELTY
金额:
$19.14万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-02-01 至 2012-01-31
关键词:
Action PotentialsAffectAlcoholsBehaviorBindingBlack raceBrain StemBreathingCalciumCarbenoxoloneCellsComplexComputer information processingConnexinsCouplingCrustaceaDataDetectionDevelopmentDiseaseEmbryoFeverFluorescence MicroscopyFluorescence Recovery After PhotobleachingFrequenciesFutureGangliaGap JunctionsGenerationsGenesGlycyrrhetinic AcidGlycyrrhizic AcidGrowthHeptanolHypercapnic respiratory failureHypoxiaImmunohistochemistryIn Situ HybridizationInferiorIntegral Membrane ProteinIon ChannelLaboratoriesLocomotionLung diseasesMaintenanceMammalsMedulla OblongataMembraneMetabolic stressMethodsMicroscopyMolecularMovementMusMyxoid cystNeonatalNeuromodulatorNeuronsNeurotransmittersOctanolsOutputPatternPersonal SatisfactionPharmacologic SubstancePolychlorinated BiphenylsPopulationPotassiumPreparationProductionPropertyProtein SubunitsProteinsRangeRelative (related person)Reporter GenesReportingResearchResearch PersonnelResistanceRespirationRespiration DisordersRetinaRett SyndromeRodentRoleSecond Messenger SystemsSensorySliceSodiumSpecificityStagingSyndromeSystemTechniquesTestingThickTissuesTranscriptUncoupling AgentsWalkingcell typecentral pattern generatorcross reactivitydaygenetic manipulationhyperthermia treatmentin vivointercellular communicationinterestmRNA Expressionnovelpostnatalrespiratoryresponse
中文摘要
说明书(申请人提供):缝隙连接是跨越相邻细胞膜的小孔,因此提供了一种在这些细胞之间进行电和细胞质连续的手段。这些跨细胞通道由连接的半管组成,每个半管都是称为连接蛋白(Cx)的完整膜蛋白亚基的六角体。作为神经元之间电连接的一种形式,缝隙连接参与了多种神经元网络的功能,包括甲壳类口胃神经节、脊椎动物视网膜、哺乳动物的下橄榄复合体,以及延髓的自主神经网络,包括前B“tzinger复合体(PBC)。首席研究员的实验室专注于澄清神经元网络机制,这些机制产生并形成神经元群体活动的有节奏的爆发。这种节律网络的活动是从行走到信息处理等基本功能的基础。在PBC的情况下,这种活动与吸气呼吸运动的产生有关。了解PBC功能的机制最终将对了解中枢呼吸系统疾病,如中枢性低通气综合征和Rett综合征至关重要。结果a)啮齿动物PBC内的神经元至少表达一些Cx,可能包括Cx26、Cx32和Cx36,以及b)可能的缝隙连接阻滞剂(解偶联剂)影响PBC爆发的产生表明缝隙连接在PBC节律发生中的作用。然而,在其他神经元群体中,解偶联分子对膜特性产生非特异性影响。此外,由于所采用的方法可能缺乏特异性,PBC内某些CX的检测一直受到质疑。因此,缝隙连接作为细胞间通讯的一种形式对PBC功能是否重要的问题仍未得到解决。因此,本文提出的研究将通过实现两个具体目标来进一步探讨这一问题。第一个目标是确定可能的缝隙结解耦合器改变PBC输出的机制。为此,PBC神经元之间的细胞质连通性以及解偶联剂(甘草酸或CBX)和控制剂(甘草酸或GZA)对这种连续性的潜在改变将通过光漂白后荧光恢复(FRAP)显微镜技术进行评估。在进行FRAP研究的同时,还将考察CBX和GZA对膜特性的影响,包括输入电阻和钙电流。本研究的第二个目的是进一步阐明PBC神经元中Cx表达的个体发育模式。这一目的将通过原位杂交来检测从胚胎第12天到出生后第21天小鼠的PBC神经元中Cx26、Cx32、Cx36、Cx45、Cx47和Cx59的转录本。神经网络,即使在独立于感觉或下行输入的情况下,也会产生突发性活动(即中央模式生成器),这些神经网络构成了各种基本功能的基础,如呼吸和运动。因此,对这种节律网络功能机制的研究将提供一个概念性的框架,在这个框架内检查影响重复行为的障碍。就本文建议的研究而言,更好地了解B“tzinger前复合体功能的机制最终将对了解中枢呼吸紊乱,如中枢性低通气综合征和Rett综合征至关重要。
英文摘要
DESCRIPTION (provided by applicant): Gap junctions are pores that span the membranes of adjacent cells, and as such provide a means of electrical and cytoplasmic continuity between those cells. These trans-cellular channels are made up of joined hemichannels, each a hexamer of integral membrane protein subunits termed connexins (Cx). As a form of electrical connectivity between neurons, gap junctions have been implicated in the functioning of various neuronal networks including some within the crustacean stomatogastric ganglion, the vertebrate retina, the inferior olivary complex of mammals, and autonomic networks of the medulla oblongata, including the pre-B"tzinger complex (PBC). The principle investigator's laboratory is focused on clarifying neuronal network mechanisms that generate and pattern rhythmic bursts of neuronal population activity. The activity of such rhythmogenic networks is fundamental to essential functions ranging from walking to information processing. In the case of the PBC, such activity is related to the generation of inspiratory movements of breathing. Understanding the mechanisms of PBC function will ultimately be vital to understanding central respiratory disorders such as central hypoventilation syndrome, and Rett Syndrome. The findings a) that neurons within the rodent PBC express at least some Cx, possibly including Cx26, Cx32, and Cx36, and b) that putative gap junction blockers (uncouplers) affect the generation of bursting by the PBC suggest a role for gap junctions in PBC rhythmogenesis. However, in other neuronal populations, uncouplers exert non-specific effects on membrane properties. Moreover, the detection of certain Cx within the PBC has been questioned due to a potential lack of specificity by the method employed. Accordingly the issue of whether gap junctions as a form of intercellular communication are important to PBC function remains unresolved. Thus, the research proposed herein will further examine this issue by accomplishing two specific aims. The first aim is to determine the mechanisms by which putative gap junction uncouplers alter PBC output. To this end the cytoplasmic connectivity between PBC neurons, and the potential alteration of this continuity by an uncoupler (carbenoxolone, or CBX) and a control agent (glycyrrhizic acid or GZA), will be evaluated by a fluorescence recovery after photobleaching (FRAP) microscopy technique. Along with the FRAP study, the effects of CBX and GZA on membrane properties including input resistance and calcium currents will be examined. The second aim of this research is to further elucidate ontogenetic patterns of Cx expression within PBC neurons. This aim will be accomplished using in situ hybridization to detect transcripts for Cx26, Cx32, Cx36, Cx45, Cx47, and Cx59 in PBC neurons in tissue from mice from embryonic day 12 through postnatal day 21. Neuronal networks that even in isolation from sensory or descending inputs generate bursts of activity (i.e., central pattern generators) underlie various essential functions such as breathing and locomotion. Accordingly, studies examining the mechanisms of such rhythmogenic network function will provide a conceptual framework within which to examine disorders affecting repetitive behaviors. In relation to the research proposed herein, better understanding the mechanisms of pre-B"tzinger Complex function will ultimately be vital to understanding central respiratory disorders such as central hypoventilation syndrome, and Rett Syndrome.
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