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Regional, Synpatic, Cellular Modulation of Abeta Metabolism

Regional, Synpatic, Cellular Modulation of Abeta Metabolism
Abeta 代谢的区域、突触、细胞调节
批准号:
8642679
负责人:
DAVID M. HOLTZMAN
金额:
$112.94万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-05-15 至 2017-04-30

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中文摘要
翻译
描述(由申请人提供):阿尔茨海默病(AD)是痴呆症的最常见原因。有令人信服的数据表明,淀粉样蛋白- β (Abeta)肽在启动疾病发病机制中起着关键的早期作用。大脑中有毒形式的β的逐渐积累似乎最终导致下游事件,最终导致痴呆。由于可溶性β肽的浓度与它聚集的可能性直接相关,确定大脑中正常调节β水平的因素可能会为启动阿尔茨海默病病理级联的因素提供关键的见解。这个PPG提案的研究人员发现突触活动与大脑细胞外空间中β肽的释放动态耦合。我们的实验室利用阿尔茨海默病小鼠模型发现了一些细胞机制,这些机制与清醒行为小鼠突触传递和β水平动态变化之间的联系,并在人类研究中得到了证实。β受睡眠-觉醒周期的动态调节,这种调节在决定生命后期β沉积方面似乎很重要。睡眠-觉醒周期对β的调节可能与突触活动有关,因为脑间质液(ISF)中β的水平与突触前和突触后的突触活动直接相关。可能参与这种耦合的分子是LRP1,因为APP内吞作用是Abeta生成的一个重要组成部分,而LRP1影响APP内吞作用和Abeta生成。我们的假设是突触活动影响大脑中β的产生和清除,随着时间的推移,这种活动影响β是否、在哪里、何时聚集成大脑中的有毒物质。此外,我们假设突触活动介导的β生成和释放1)受到睡眠/觉醒周期和调节该周期的分子的影响;2)部分通过ERK信号传导介导的NMDA受体突触后刺激发生;3)低密度脂蛋白受体相关蛋白-1 (LRP1)通过与APP的相互作用受到影响。我们将结合独特的技术,包括体内蛋白质微透析,13c标记的氨基酸脉冲追踪标记结合质谱,以及局点病毒介导的基因传递,评估系统级网络功能,突触和分子信号传导以及细胞生物学。
英文摘要
DESCRIPTION (provided by applicant): Alzheimer's disease (AD) is the most common cause of dementia. There is compelling data that the amyloid- beta (Abeta) peptide plays a key early role in initiating disease pathogenesis. The progressive buildup of toxic forms of Abeta in the brain appears to ultimately lead to downstream events culminating in dementia. Since the concentration of soluble Abeta peptide is directly related to the probability that it will aggregate, determining what normally regulates Abeta levels in the brain will likely provide critical insights ino factors that initiate the AD pathological cascade. The investigators on this PPG proposal have found that synaptic activity is dynamically coupled with the release of the Abeta peptide in the extracellular space of the brain. Our labs have utilized mouse models of AD to discover some of the cellular mechanisms that link synaptic transmission and dynamic changes in Abeta levels in awake, behaving mice with confirmation in human studies. Abeta is dynamically regulated by the sleep-wake cycle and this regulation appears important in determining Abeta deposition later in life. The regulation of Abeta by the sleep-wake cycle may be tied to synaptic activity as brain interstitial fluid (ISF) levels of Abeta are directly coupled with synaptic activity both pre- and post-synapticall. A molecule likely involved in this coupling is LRP1, since APP endocytosis is required for a large component of Abeta generation and LRP1 influences APP endocytosis and Abeta generation. Our hypothesis is that synaptic activity influences both Abeta production and clearance in the brain and that over time this activity influences whether, where, and when Abeta aggregates into toxic species in the brain. In addition, we hypothesize that synaptic activity-mediated Abeta generation and release 1) is influenced by the sleep/wake cycle and molecules that regulate that cycle; 2) occurs in part via post-synaptic stimulation of NMDA receptors via ERK signaling; and 3) is influenced by the LDL-receptor related protein-1 (LRP1) via its interactions with APP. We will combine unique techniques including in vivo protein microdialysis, 13C-labeled amino acid pulse chase labeling combined with mass spectrometry, and focal viral-mediated gene delivery with approaches that assess systems level network function, synaptic and molecular signaling, and cell biology.
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海外基金