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Microglial uptake and inactivation of epoxyeicosatrienoic acid in stroke injury

Microglial uptake and inactivation of epoxyeicosatrienoic acid in stroke injury
中风损伤中小胶质细胞对环氧二十碳三烯酸的摄取和失活
批准号:
8206792
负责人:
Ines Pia Koerner
金额:
$18.23万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-12-17 至 2015-11-30

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中文摘要
翻译
描述(由申请人提供):中风是美国第三大死亡原因,也是长期残疾的主要原因。大多数急性中风治疗的临床试验都失败了,这强调了需要确定新的治疗靶点并开发有效的治疗方法来减少脑损伤。我们在这项提议中的广泛目标是解开控制神经炎症和特别是小胶质细胞在中风损伤中的有害作用的分子途径。获得的知识将有助于确定中风治疗的新药物靶点。中心假设是小胶质细胞在缺血期间被激活并促进损伤的发展。探讨了这种小胶质细胞介导的损伤的两个方面,缺血期间环氧二十碳三烯酸(EET)的耗尽,这增加了神经元死亡,以及缺血后EET的失活,这增加了小胶质细胞的激活并进一步加剧损伤。在具体目标1中,我们将确定小胶质细胞是否通过CD 36介导的摄取耗尽EET,以及EET缺乏是否有助于缺血后神经元死亡。在目标2中,我们将确定EET的消耗是否有助于小胶质细胞在体内中风损伤。在目标3中,我们将测试阻断小胶质细胞中的EET失活是否减少小胶质细胞活化和小胶质细胞介导的神经元死亡。最后,在目标4中,我们将研究抑制小胶质细胞中EET失活的可溶性环氧化物水解酶是否在体内阻断中风后的小胶质细胞活化并减少中风损伤。总体目标是开发和表征中风临床问题的新实验方法,特别是了解小胶质细胞对中风病理学的贡献,以及利用对小胶质细胞/神经元相互作用和小胶质细胞介导的损伤的日益了解来定义急性中风的新治疗靶点和方法。这些实验将有助于表征环氧二十碳三烯酸在中风后小胶质细胞活化和小胶质细胞介导的损伤中的作用。候选人是一名麻醉师和神经重症监护医师,具有很强的缺血性脑损伤研究背景。候选人的机构提供了一个支持和协作的环境,非常适合促进新的独立研究者的持续学术和科学成长。通过拟议实验获得的额外专业知识将促进候选人作为独立研究人员的科学发展和成长。这些研究中收集的证据将为R 01未来的成功应用提供基础。 公共卫生相关性:拟议的实验将调查小胶质细胞,大脑常驻免疫细胞,在中风后脑损伤中的作用。具体来说,这些实验的重点是小胶质细胞对特定脑脂肪酸的吸收和代谢,这有助于炎症和中风后脑细胞的死亡。从这些实验中获得的损伤分子机制的知识将有助于开发新的和更具体的中风治疗方法。
英文摘要
DESCRIPTION (provided by applicant): Stroke is the third leading cause of death and a major cause of long-term disability in the United States. Most clinical trials of acute stroke therapy have failed, underscoring the need to identify new therapeutic targets and develop effective therapies to reduce brain damage. Our broad goal in this proposal is to unravel the molecular pathways governing the detrimental effect of neuroinflammation and specifically microglia in stroke injury. Knowledge gained will help identify new drug targets for stroke therapy. The central hypothesis is that microglia are activated during ischemia and contribute to the development of injury. Two aspects of this microglia-mediated injury are explored, the depletion of epoxyeicosatrienoic acid (EET) during ischemia, which increases neuronal death, as well as the inactivation of EET after ischemia, which increases microglial activation and further exacerbates injury. In Specific Aim 1, we will determine whether microglia deplete EET through CD36-mediated uptake and whether EET deficiency contributes to neuronal death after ischemia. In Aim 2, we will determine whether depletion of EET by microglia contributes to stroke injury in vivo. In Aim 3, we will test whether blocking EET inactivation in microglia reduces microglial activation and microglia-mediated neuronal death. Finally, in Aim 4, we will investigate whether inhibition of EET-inactivating soluble epoxide hydrolase in microglia blocks microglial activation after stroke in vivo and reduces stroke injury. The overarching goals are to develop and characterize new experimental approaches to the clinical problem of stroke, specifically to understand the contribution of microglia to stroke pathology as well as use the increasing understanding of microglia/neuronal interplay and microglia-mediated injury to define new therapeutic targets and approaches for acute stroke. The experiments will help characterize the role of epoxyeicosatrienoic acid in microglia activation and microglia-mediated injury after stroke. The candidate is an anesthesiologist and neurointensivist with a strong research background studying ischemic brain injury. The candidate's institution provides a supportive and collaborative environment that is ideally suited to fostering the continued academic and scientific growth of a newly independent investigator. The additional expertise acquired through the proposed experiments will foster the candidate's scientific development and growth as an independent researcher. Evidence gathered in these studies will provide the base for a successful future R01 application. PUBLIC HEALTH RELEVANCE: The proposed experiments will investigate the role of microglia, the brain resident immune cells, in brain injury after stroke. Specifically, the experiments focus on uptake and metabolism of a specific brain fatty acid by microglia, which contributes to inflammation and the death of brain cells after stroke. Knowledge of molecular mechanisms of injury that will be gained from these experiments will help develop novel and more specific therapeutic approaches for stroke.
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Microglial uptake and inactivation of epoxyeicosatrienoic acid in stroke injury
Microglial uptake and inactivation of epoxyeicosatrienoic acid in stroke injury
Microglial uptake and inactivation of epoxyeicosatrienoic acid in stroke injury
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