Potassium channel dysfunction in cerebral arteries
Potassium channel dysfunction in cerebral arteries
批准号:
8249384
负责人:
DAVID W BUSIJA
金额:
$37.12万
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:
2004-09-01 至 2014-02-28
关键词:
AddressAgingAging-Related ProcessAlzheimer&aposs DiseaseAnimalsAreaArteriesBloodBlood VesselsCellsCerebrovascular CirculationCerebrumChronicCognitiveConsumptionDataDietDilatorDoseDrug PrescriptionsElementsEndotheliumFructoseFunctional disorderInsulinInsulin ReceptorInsulin ResistanceLeadMediatingMediator of activation proteinMetabolic syndromeMetforminNatureNeuronsNon-Insulin-Dependent Diabetes MellitusObesityPhysiologicalPotassium ChannelRattusReactive Oxygen SpeciesReplacement TherapyResearchRoleSignal TransductionSmooth MuscleSprague-Dawley RatsStressStrokeTestingTherapeuticTherapeutic AgentsTimeTreatment ProtocolsVascular EndotheliumVascular Smooth MuscleVascular resistanceagedaging populationcerebral arterycerebrovasculardiabetic patientglucose transportimprovedinsulin signalingneglectnervous system disordernormal agingnovelpreconditioningpreventprotective effectpublic health relevanceresponserestoration
中文摘要
描述(由申请人提供):我们的新的初步数据导致了这样的假设,即“胰岛素是脑循环的重要调节剂,这种作用的大小随着年龄的增长和代谢综合征而受损。“这个重要的研究领域完全没有被探索过。我们的数据首次表明,胰岛素的水平相当于每天吃饭时血液中达到的水平,能够对脑血管张力和脑血流量(CBF)产生显着影响。此外,从未研究过与糖尿病患者替代治疗相关的极高水平胰岛素的作用。此外,脑动脉中胰岛素信号级联的许多初始元素与我们发现的促进神经元预处理的元素相似;导致推测胰岛素对脑血管系统中的应激相关损伤具有正常的保护作用。我们的初步数据还表明,胰岛素对脑血管系统的依赖性作用大大降低了胰岛素抵抗(IR),代谢综合征的主要组成部分,或老化。然而,恢复正常脑血管对胰岛素反应性的机制和可能的治疗方法尚不清楚。我们将讨论两个具体目标。具体目标1。胰岛素对脑动脉影响的测定。首先,我们将描述生理和治疗剂量的胰岛素对正常Sprague道利(SD)大鼠脑动脉的影响。第二,我们将研究内皮和平滑肌在血管张力综合变化中的作用。第三,我们将研究胰岛素受体激活后的信号级联。第四,我们将研究介导胰岛素对脑动脉作用的血管活性物质的性质。第五,我们将研究胰岛素是否能保护脑血管细胞免受致命的压力。具体目标2。测定胰岛素对衰老和胰岛素抵抗期间脑动脉的影响。首先,我们将描述老年(12-24个月)SD大鼠脑动脉的反应。第二,我们将描述由于摄入高果糖饮食而患胰岛素抵抗的SD大鼠脑动脉的反应。第三,我们将阐明老年和胰岛素抵抗动物反应改变的机制。第四,我们将研究在IR或衰老的情况下恢复正常脑动脉对胰岛素反应的治疗方法。
公共卫生相关性:慢性脑血管功能不全发生在IR和衰老中,并导致神经系统疾病,如非特异性认知缺陷、阿尔茨海默病和中风,但尚未研究胰岛素的潜在作用。目前的治疗方案并不是最佳的,我们希望我们的研究结果将导致新的和改进的治疗方法,以预防或减缓肥胖和老龄化人群中神经系统疾病的发作。
英文摘要
DESCRIPTION (provided by applicant): Our novel, preliminary data have lead to the hypothesis that "insulin is an important regulator of the cerebral circulation and that the magnitude of this effect is impaired with aging and the metabolic syndrome." This important research area is totally unexplored. Our data show for the first time that insulin, at levels which are equivalent to those reached in blood several times each day during meals, is able to have dramatic effects on cerebral vascular tone and cerebral blood flow (CBF). In addition, the effect of insulin at very high levels which are associated with replacement therapy in diabetic patients has never been investigated. Furthermore, many of the initial elements of the insulin signaling cascade in cerebral arteries are similar to those that we have found to promote neuronal preconditioning; leading to speculation that insulin has a normal, protective effect against stress-related damage in the cerebral vasculature. Our preliminary data also indicate that insulin-dependent effects on the cerebral vasculature are greatly reduced by insulin resistance (IR), a major component of the metabolic syndrome, or by aging. However, mechanisms and possible therapeutic approaches for the restoration of normal cerebral vascular responsiveness to insulin are unknown. We will address two specific aims. Specific Aim 1. Determination of the effects of insulin on cerebral arteries. First, we will characterize the effects of physiological and therapeutic doses of insulin on cerebral arteries of normal Sprague Dawley (SD) rats. Second, we will examine the roles of endothelium and smooth muscle on the integrative changes in vascular tone. Third, we will examine the signaling cascades following activation of insulin receptors. Fourth, we will examine the nature of vasoactive substances mediating insulin effects on the cerebral arteries. Fifth, we will examine whether insulin protects cerebral vascular cells against lethal stress. Specific Aim 2. Determination of the effects of insulin on cerebral arteries during aging and insulin resistance. First, we will characterize responses in cerebral arteries in aged (12-24 month) SD rats. Second, we will characterize responses in cerebral arteries from SD rats suffering from insulin resistance due to consumption of a diet high in fructose. Third, we will elucidate the mechanisms of altered responses in aged and insulin resistant animals. Fourth, we will examine therapeutic approaches for the restoration of normal cerebral arterial responses to insulin in the presence of IR or aging.
PUBLIC HEALTH RELEVANCE: Chronic cerebral vascular insufficiency as occurs in IR and in aging and leads to neurological diseases such as non-specific cognitive deficiency, Alzheimer's Disease and strokes but the potential role of insulin has not been studied. Current treatment regimens are not optimal and we expect that the results of our studies will lead to new and improved therapies to prevent or slow the onset of neurological diseases in an obese and aging population.
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