Opiates and Adult Neurogenesis
Opiates and Adult Neurogenesis
批准号:
8429482
负责人:
AMELIA J EISCH
金额:
$47.37万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-05-01 至 2015-01-31
关键词:
AcuteAddictive BehaviorAdultAffectBirthBrainBrain regionBromodeoxyuridineCellsChronicCognitive deficitsComplexDataDiseaseDrug AddictionDrug RecallsDrug usageExtinction (Psychology)GenerationsHeroinHippocampus (Brain)LabelLeadLearningLifeLinkMemoryMorphineMorphologyNeuronsOpiate AddictionOpiatesOutcomePharmaceutical PreparationsPhenotypeProcessRattusRecoveryRelapseRelative (related person)ResearchRoleRunningS PhaseScienceSelf AdministrationSelf-AdministeredStagingStem cellsStructureSymptomsTechniquesTestingTherapeuticTimeTrainingTransgenic MiceWithdrawaladdictionadult neurogenesisdentate gyrusdrug of abusedrug relapsedrug rewardimprovedinsightmouse modelnestin proteinneuroadaptationneurogenesisnovelprecursor cellpreferencepreventstem
中文摘要
描述(由申请人提供):药物依赖与边缘相关结构体积减小、海马形态改变以及边缘和海马相关症状(如学习和记忆缺陷)有关。相反,海马体与药物奖励和药物寻求复发有关。阐明药物诱导的海马体神经适应的时间过程、程度和原因,以及海马体神经适应如何影响成瘾行为,将大大提高我们对成瘾的理解和治疗。海马体一个值得注意的方面是它在一生中产生新神经元的能力。成人产生的神经元在功能上整合到海马体回路中,似乎与海马体依赖性学习有关。滥用药物,包括吗啡,减少海马齿状回颗粒下带(SGZ)的神经发生。这增加了阿片类药物引起的神经发生改变导致认知缺陷、持续服药或复发或以其他方式阻碍康复的可能性。我们将使用最先进的技术来测试这种可能性,以克服SGZ前体分析中的障碍,从而提高我们对阿片类药物和海马神经发生之间关系的理解。目的1。确定吗啡自我给药和戒断如何改变成人海马神经发生的不同阶段。慢性而非急性阿片类药物会减少成人海马中新细胞的生成和神经元的生成。使用吗啡自我给药,我们将采取理解这一作用的下一个重要步骤:描述阿片类药物和戒断对所有细胞阶段的确切影响,从干细胞和前体细胞的增殖,到年轻神经元的成熟,以及最终的存活到成熟。目标2。评估改变的成人海马神经发生与药物寻找的关系。在Aim 1和我们关于戒断后新神经元对药物寻求重要性的初步数据的指导下,我们将探索阿片类药物暴露如何改变自愿跑步和海马依赖学习,以及跑步和学习如何影响药物寻求和阿片类药物诱导的海马神经发生改变。目标3。评估成人海马神经元在药物/环境关联中的参与。目前尚不清楚成人生成的神经元是否受到药物/环境关联的影响或在恢复自我给药或条件位置偏好(CPP)中起重要作用。使用我们的新型转基因小鼠模型来诱导和选择性地减少海马神经发生,我们将检验在关键成熟窗口期间,成人产生的神经元被药物/环境关联激活的假设。这些研究可能提示治疗阿片成瘾或预防阿片复发的治疗方法。这些研究还将提高我们对阿片类药物影响大脑功能海马功能的复杂机制的理解,并将深入了解海马和成人神经发生在成瘾过程中的作用,这是成瘾研究和生物医学科学的一个关键问题。药物成瘾是一种毁灭性的疾病,其特征是强迫性药物使用、高复发倾向和认知缺陷。滥用毒品,包括海洛因,会导致海马体中新神经元数量的减少,海马体是大脑中对学习和记忆很重要的区域。我们将探索阿片类药物成瘾与成人海马神经发生之间潜在的相互关系,从而为成瘾大脑的结构和功能以及成人大脑中新神经元的功能提供急需的见解。
英文摘要
DESCRIPTION (provided by applicant): Drug dependence is linked to decreased volume of limbic-related structures, altered hippocampal morphology, and limbic- and hippocampal-related symptoms, such as deficits in learning and memory. Conversely, the hippocampus is involved in drug reward and relapse to drug seeking. Clarification of the time course, extent, and cause of drug-induced hippocampal neuroadaptations and identification of how hippocampal neuroadaptations impact addictive behaviors will greatly improve our understanding and treatment of addiction. A notable aspect of the hippocampus is its ability to generate new neurons throughout life. Adult-generated neurons are functionally integrated into hippocampal circuitry, and appear to be involved in hippocampal- dependent learning. Drugs of abuse, including morphine, decrease neurogenesis in the subgranular zone (SGZ) of the hippocampal dentate gyrus. This raises the possibility that opiate-induced alteration in neurogenesis leads to cognitive deficits, continued drug taking or relapse, or otherwise impedes recovery. We will test this possibility using state-of-the-art techniques to overcome obstacles in SGZ precursor analysis and thus advance our understanding of the relationship between opiate and hippocampal neurogenesis. Aim 1. Determine how morphine self-administration and withdrawal alter discrete stages of adult hippocampal neurogenesis. Chronic, but not acute, opiates decrease the birth of new cells and generation of neurons in adult hippocampus. Using morphine self-administration, here we will take the next essential step in understanding this action: delineate the precise effects of opiates and withdrawal on all cellular stages, from proliferation of stem and precursor cells, to maturation of young neurons, and eventual survival to maturity. Aim 2. Assess how altered adult hippocampal neurogenesis relates to drug seeking. Guided by Aim 1 and our preliminary data on the importance of new neurons to drug seeking after withdrawal, we will explore how voluntary running and hippocampal-dependent learning are altered by opiate exposure, and how running and learning influence drug-seeking and opiate-induced alterations in hippocampal neurogenesis. Aim 3. Evaluate the involvement of adult-generated hippocampal neurons in drug/context association. It is unknown if adult-generated neurons are influenced by or important in the drug/context association critical for reinstatement to self-administration or conditioned place preference (CPP). Using our novel transgenic mouse models to inducibly and selectively reduce hippocampal neurogenesis, we will examine the hypothesis that adult-generated neurons are activated by drug/context associations during a critical maturation window. These studies may indicate therapeutic approaches for treating opiate addiction or preventing opiate relapse. These studies will also improve our understanding of the complex mechanisms by which opiates affect brain function hippocampal function, and will provide insight into the role of the hippocampus and adult neurogenesis in addictive processes, a critical issue for addiction research in particular and biomedical science in general. Drug addiction is a devastating disorder marked by compulsive drug use, high propensity to relapse to drug taking, and cognitive deficits. Drugs of abuse, including heroin, lead to a decrease in the number of new neurons in the hippocampus, a brain region important for learning and memory. We will explore the potentially reciprocal relationship between opiate addiction and adult hippocampal neurogenesis, thus providing much- needed insight into the structure and function of the addicted brain as well as the function of new neurons in the adult brain.
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DOI:
10.1152/japplphysiol.01174.2013
发表时间:
2014-06
期刊:
Journal of applied physiology
影响因子:
3.3
作者:
[S. Latchney;P. D. Rivera;X. Mao;V. Ferguson;T. Bateman;L. Stodieck;G. Nelson;A. Eisch]
通讯作者:
S. Latchney;P. D. Rivera;X. Mao;V. Ferguson;T. Bateman;L. Stodieck;G. Nelson;A. Eisch
DOI:
10.1016/j.neuropharm.2011.09.003
发表时间:
2012-01
期刊:
NEUROPHARMACOLOGY
影响因子:
4.7
作者:
[Petrik, David, Lagace, Diane C., Eisch, Amelia J.]
通讯作者:
Eisch, Amelia J.
DOI:
10.1038/nn.2385
发表时间:
2009-09
期刊:
Nature neuroscience
影响因子:
25
作者:
[Gao Z, Ure K, Ables JL, Lagace DC, Nave KA, Goebbels S, Eisch AJ, Hsieh J]
通讯作者:
Hsieh J
DOI:
10.1523/jneurosci.4256-09.2010
发表时间:
2010-01-06
期刊:
The Journal of neuroscience : the official journal of the Society for Neuroscience
影响因子:
--
作者:
[Noonan MA, Bulin SE, Fuller DC, Eisch AJ]
通讯作者:
Eisch AJ
DOI:
10.1126/science.1222941
发表时间:
2012-10-05
期刊:
Science (New York, N.Y.)
影响因子:
--
作者:
[Eisch AJ, Petrik D]
通讯作者:
Petrik D
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