Basal Forebrain Corticopetal GABAergic Neurons and Cortical Arousal
Basal Forebrain Corticopetal GABAergic Neurons and Cortical Arousal
批准号:
8635522
负责人:
Elda Arrigoni
金额:
$26.1万
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-09-15 至 2015-08-31
关键词:
AcuteAlzheimer&aposs DiseaseAnimalsArousalBehavioralBrainBrain regionComplexConsciousness DisordersDesigner DrugsDissectionDrug ReceptorsFunctional disorderGenetic RecombinationHumanHypothalamic structureImpaired cognitionIn VitroInterneuronsLateralLesionLiteratureMediatingMusMuscarinicsNerve DegenerationNeurobiologyNeurodegenerative DisordersNeuronsNeurotransmittersParkinson DiseasePathogenesisPharmacogeneticsPhysiologicalPopulationProcessRegulationRoleSchizophreniaSleep Wake CycleSliceSystemTestingTimeViralViral VectorVirusWakefulnessWorkbasal forebrainbasecholinergiccholinergic neuroncontrolled releasegamma-Aminobutyric Acidin vivoinsightneurobehavioralneuropsychiatrynormal agingnovelpresynapticprogramspromoterpublic health relevancereceptorselective expressiontransgene expression
中文摘要
项目总结/摘要
基底前脑(BF)的结构和功能完整性是维持脑功能的绝对要求。
行为和脑电图(EEG)唤醒。脑屏障调节脑电的机制和底物
而神经行为唤醒仍然知之甚少。对相关文献的回顾表明,
绝大多数关于BF回路的研究都集中在大脑皮层胆碱能BF系统,
生理(EEG和行为唤醒)和病理生理(神经退行性疾病)调节,
尽管事实是:1)胆碱能BF系统的损伤在EEG或行为方面产生有限的变化,
唤醒; 2)BF还包含一群皮质投射的GABA能神经元,
与胆碱能神经元混合虽然一段时间以来人们一直认为,
BF神经递质系统可能与胆碱能神经元相互作用或并行工作,调节皮质神经元的功能。
电路,GABA能BF神经元的贡献,特别是那些投射到皮层,
这一过程在很大程度上尚未探索。在这个建议中,我们试图确定在体外(细胞)和体内
BF GABA能神经元对EEG和行为的贡献的(系统)机制和底物
觉醒,包括睡眠-觉醒周期。我们假设BF GABA能人群与
维持EEG和行为唤醒,这种影响主要是由皮质投射介导的,
BF的GABA能神经元,而不是由BF的GABA能中间神经元或BF的GABA能神经元投射到其他
大脑区域,如外侧下丘脑。BF γ-氨基丁酸能神经元作用的实验研究
然而,在EEG和行为唤醒中,皮质脑BF GABA能神经元,特别是皮质脑BF GABA能神经元,
考虑到GABA能的多种递质系统和亚群,
BF内的神经元。因此,我们寻求开发和验证新的基于病毒的药物遗传学
和条件启动子特异性转基因表达系统,通过选择性表达来验证我们的假设。
BF GABA能神经元的分离和操作。具体来说,我们将使用所谓的DREADD(设计器
受体专门由设计药物激活)系统可逆地激活或沉默BF GABA能
神经元,包括皮质投射的BF GABA能神经元的选择性操作,无论是在体外,
in vivo.该实验工作的结果将提供关于衬底的重要信息,
是产生和维持觉醒所必需的,并强调BF GABA能的关键贡献
神经元对这些过程的反应。
英文摘要
Project Summary/Abstract
The structural and functional integrity of the basal forebrain (BF) is an absolute requirement for maintaining
behavioral and electrographic (EEG) wake. The mechanisms and substrates by which the BF regulates EEG
and neurobehavioral arousal remains however poorly understood. A review of the relevant literature reveals
that the vast majority of studies on BF circuitry have focused on the corticopetal cholinergic BF system in
physiological (EEG and behavioral arousal) and pathophysiological (neurodegenerative disorders) regulation,
despite the facts that 1) lesions of the cholinergic BF system produce limited changes in EEG or behavioral
wake; and 2) the BF also contains a population of cortically projecting GABAergic neurons that roughly
intermingle with the cholinergic neurons. While it has been appreciated for some time that other corticopetal
BF neurotransmitter systems may interact or work in parallel with cholinergic neurons in modulating cortical
circuitry, the contribution of GABAergic BF neurons, and in particular those projecting to the cortex, to this
process remains largely unexplored. In this proposal we seek to determine the in vitro (cellular) and in vivo
(system) mechanisms and substrates by which the BF GABAergic neurons contribute to EEG and behavioral
arousal, including sleep-wake cycles. We hypothesize that the BF GABAergic population is critically involved in
maintaining EEG and behavioral wake and that this influence is mediated primarily by cortically-projecting
GABAergic BF neurons and not by BF GABAergic interneurons or BF GABAergic neurons that project to other
brain regions, such as the lateral hypothalamus. The experimental dissection of the role of BF GABAergic
neurons, and in particular the corticopetal BF GABAergic neurons in EEG and behavioral arousal, has however
proven a considerable challenge given the multiple transmitter systems and sub-populations of GABAergic
neurons within the BF. We have therefore sought to develop and validate novel viral-based pharmacogenetic
and conditional promoter-specific transgene expression systems to test our hypothesis through the selective
isolation and manipulation of BF GABAergic neurons. Specifically we will use the so-called DREADD (designer
receptors exclusively activated by designer drugs) system to reversibly activate or silence BF GABAergic
neurons, including the selective manipulation of cortically-projecting BF GABAergic neurons, both in vitro and
in vivo. The results from this experimental work will provide important information regarding the substrates that
are necessary to produce and maintain arousal and emphasize the critical contribution of BF GABAergic
neurons to these processes in freely behaving, unrestrained animals.
期刊论文(0)
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科研奖励(0)
会议论文
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Pontine Control of REM Atonia
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Pontine Control of REM Atonia
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Pontine Control of REM Atonia
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Pontine Control of REM Atonia
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Pontine Control of REM Atonia
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资助金额:$36.44万
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