Mechanisms of anesthetic effects on tachykinin induced airway tone
Mechanisms of anesthetic effects on tachykinin induced airway tone
批准号:
7618118
负责人:
CHARLES W EMALA
金额:
$33.01万
依托单位国家:
美国
项目类别:
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-04-01 至 2011-05-31
关键词:
AccountingAgonistAmericanAnesthesia proceduresAnestheticsAnimal ModelAsthmaAttenuatedBrainBronchial SpasmBronchoconstrictionButyric AcidsC FiberCaringCaviaCellsChemosensitizationChloride IonChloridesChronic Obstructive Airway DiseaseContractsDataDiseaseEpitheliumEtomidateHigh Pressure Liquid ChromatographyHumanIncidenceIntravenous AnestheticsIntubationIrritantsMeasuresMediatingMorbidity - disease rateMuscle ContractionNerveNeuronsNeurotransmittersPatch-Clamp TechniquesPatientsPropofolRecombinantsReflex actionRelaxationResearch PersonnelRiskSignal TransductionSmooth MuscleSmooth Muscle MyocytesStructureTAC1 geneTachykininTachykinin ReceptorThiopentalTimeTracheaTravelTubeUnited States National Institutes of HealthVagus nerve structurebasecholinergicconstrictionendotrachealgamma-Aminobutyric Acidinhibitor/antagonistirritationneuroregulationnovelprogramsprotective effectreceptorrespiratory smooth muscleuptake
中文摘要
描述(由申请人提供):哮喘的发病率在全球范围内不断增加,在过去20年中,美国的发病率增加了250%。2001年,NIH估计有1700万美国人患有哮喘,1210万人患有COPD。越来越多的患有这些疾病的患者需要麻醉和支气管痉挛,特别是在诱导和麻醉苏醒期间,具有显著的发病率。更好地了解麻醉期间最大限度地减少支气管痉挛的疗法将使越来越多的哮喘和COPD患者的麻醉护理更加安全。诱导期间气管插管或麻醉苏醒期间气管内插管的存在在气道中引发神经介导的刺激性反射,促进支气管收缩。气道紧张度的神经控制由迷走神经内行进的胆碱能神经和向CMS发送传入信号的伤害感受性C纤维调节,所述CMS调节胆碱能流出并局部释放速激肽到气道壁中。在大脑中,速激肽释放γ-氨基丁酸(GABA),主要的神经元抑制性神经递质。这种反射的胆碱能成分已在动物模型和人类中得到广泛研究,但关于C纤维、释放的速激肽或GABA对反射诱导的支气管收缩的贡献知之甚少。已知丙泊酚可变构增强GABA对大脑中GABAA受体的活性,并被认为是有支气管痉挛风险的患者的首选静脉麻醉诱导剂,但其气道保护机制尚不清楚。阐明异丙酚保护气道作用的机制可能为多种原因引起的支气管收缩提供新的治疗方法。令人兴奋的初步数据表明[1] GABA局部存在于气道平滑肌附近,[2]气道平滑肌表达GABAA受体,[3] GABAA激动剂松弛气道平滑肌,[4]丙泊酚通过GABAA受体选择性减弱NK 2介导的气道收缩。基于这些初步数据,我们假设气道刺激释放速激肽,其激活气道神经上的NK 2受体以释放GABA,其允许丙泊酚对气道平滑肌GABAA受体的变构增强以促进松弛。
英文摘要
DESCRIPTION (provided by applicant): The incidence of asthma is increasing worldwide with a 250% increase in the US over the past 20 years. In 2001 the NIH estimated that 17 million Americans suffer from asthma and 12.1 million from COPD. An increasing number of patients with these diseases require anesthesia and bronchospasm especially during induction and emergence from anesthesia carries significant morbidity. A better understanding of therapies that minimize bronchospasm during anesthesia will make anesthetic care safer for a growing number of patients with asthma and COPD. Intubation of the trachea during induction or the presence of an endotracheal tube during emergence from anesthesia initiates a neurally-mediated irritant reflex in the airway promoting bronchoconstriction. Neural control of airway tone is modulated by both cholinergic nerves traveling within the vagus nerve and by nocioceptive C fibers that send afferent signals to the CMS that modulate cholinergic outflow and locally release tachykinins into the airway wall. In brain, tachykinins release v-amino butyric acid (GABA), the primary neuronal inhibitory neurotransmitter. The cholinergic component of this reflex has been extensively explored in animal models and humans but little is known regarding the contribution of C fibers, released tachykinins or GABA to reflex-induced bronchoconstriction. Propofol is known to allosterically enhance the activity of GABA at GABAA receptors in the brain and is recognized as the intravenous anesthetic induction agent of choice in patients at risk for bronchospasm but its mechanism of airway protection is poorly understood. Elucidating the mechanisms of propofol's protective airway effects may provide novel therapies for bronchoconstriction from many causes. Exciting preliminary data demonstrate that [1] GABA is locally present near airway smooth muscle, [2] airway smooth muscle expresses GABAA receptors, [3] GABAA agonists relax airway smooth muscle and [4] propofol selectively attenuates NK2-mediated airway constriction via GABAA receptors. Based on these preliminary data we hypothesize that airway irritation releases tachykinins which activate NK2 receptors on airway nerves to release GABA which allows for the allosteric potentiation at airway smooth muscle GABAA receptors by propofol to facilitate relaxation.
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会议论文
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