Mechanisms of Neuronal Death in Parkinson's Disease
Mechanisms of Neuronal Death in Parkinson's Disease
批准号:
6773440
负责人:
KAREN L O'MALLEY
金额:
$35.38万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-07-01 至 2008-01-31
关键词:
6 hydroxydopamineParkinson&aposs diseasebehavior testbiological signal transductioncalcium indicatorcell deathdisease /disorder modeldopaminefree radical oxygenfree radical scavengersgreen fluorescent proteinsimmunocytochemistrylaboratory mousemethylphenyltetrahydropyridineneuronsneuroprotectantsneurotransmitter metabolismneurotransmitter transportnonhuman therapy evaluationoxidative stresspathologic processstereotaxic techniquestissue /cell culturewild animals
中文摘要
描述(由申请人提供):氧化应激是帕金森病(PD)的一个主要因素。多巴胺(DA)本身很容易被氧化成醌衍生物和活性氧(ROS),这些物质会损害能量代谢,并与upsilon-synuclein等蛋白质形成加合物。由于动物模型中DA的药理学消耗与非特异性外周和中枢神经系统效应相混淆,因此DA氧化在黑质细胞死亡中的作用以前无法解决。因此,该领域的一个关键假说是DA氧化是PD患者多巴胺能神经元死亡的主要原因。提出的研究解决了这一假设的几个方面,包括触发DA氧化的已知环境因素的相互作用。具体来说,帕金森诱导药物MPP+释放DA的潜力是由于其与DA交换和/或降低细胞内pH梯度的能力,这一假设将通过表达来自多巴胺能位点的增强绿色荧光蛋白(TH+/eGFP)的新衍生小鼠来解决。从这些动物身上获得的原代培养物以及从多巴胺能末端场纯化的突触体和囊泡制剂将与荧光和放射性探针结合使用,以确定毒素处理后DA释放、细胞膜变化、ROS形成、ATP损失等的时间方面。此外,DA氧化导致多巴胺能细胞死亡的假设将在体内通过基因工程使动物产生不同水平的DA来直接验证。我们将采用行为、氧化和免疫细胞化学标准来确定DA在PD急性和慢性MPTP模型中的作用。为了测试DA消耗是否会阻止ROS,新的原位ROS检测方法将与针对硝基酪氨酸,硝化α -突触核蛋白等的抗体一起使用,以暂时评估DA缺乏和野生型动物急性或慢性MPTP后ROS的形成。综上所述,拟议的研究将确定DA氧化是否在DA合成细胞的死亡中起核心作用,并提供从标准动物模型中无法获得的见解。了解多巴胺诱导的自由基形成的来源和级联事件将有助于回答围绕使用多巴胺替代疗法的风险-收益争议,并促进PD发病机制中新药和/或治疗策略的开发。
英文摘要
DESCRIPTION (provided by applicant): Oxidative stress is a major factor in Parkinson's Disease (PD). Dopamine (DA) itself is easily oxidized to quinone derivatives and reactive oxygen species (ROS) that impair energy metabolism and form adducts with proteins such as upsilon-synuclein. Because pharmacological depletion of DA in animal models is confounded by non-specific peripheral and central nervous system effects, the role of DA oxidation in nigral cell death has been previously impossible to address. Thus a key unanswered hypothesis in this field is that DA oxidation is a major contributor to the death of dopaminergic neurons in PD. The proposed studies address several aspects of this hypothesis including the interaction of known environmental factors in triggering DA oxidation. Specifically, the hypothesis that the DA-releasing potential of the parkinsonism-inducing drug, MPP+, is due to its ability to exchange with DA and/or to reduce intracellular pH gradients will be addressed using newly derived mice expressing enhanced green fluorescent protein from a dopaminergic locus (TH+/eGFP). Primary cultures derived from these animals as well purified synaptosomal and vesicular preparations from dopaminergic terminal fields will be used in combination with fluorescent and radioactive probes to determine the temporal aspects of DA release, intracellular membrane changes, ROS formation, ATP loss, etc in response to toxin treatment. In addition, the hypothesis that DA oxidation contributes to the death of dopaminergic cells will be directly tested in vivo using animals genetically engineered to have different levels of DA production. Behavioral, oxidative and immunocytochemical criteria will be used to establish the role of DA in both the acute and chronic MPTP model of PD. To test whether DA depletion prevents ROS, new methodologies to detect in situ ROS will be used with a battery of antibodies directed against nitrotyrosine, nitrated alpha-synuclein, etc. to temporally evaluate ROS formation following acute or chronic MPTP administration in DA deficient and wild type animals. Taken together, the proposed studies will determine whether DA oxidation plays a central role in the death of DA synthesizing cells and provide insights impossible to obtain from standard animal models. Knowledge of the source and cascade of events surrounding DA-induced free radical formation will help answer risk-benefit controversies surrounding the use of dopamine replacement therapies as well as facilitate the development of new drugs and/or treatment strategies in the pathogenesis of PD.
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