Circadian Photoentrainment in Mammals
Circadian Photoentrainment in Mammals
批准号:
7809477
负责人:
Satchidananda Panda
金额:
$47.4万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-05-01 至 2011-04-30
关键词:
11 cis RetinalAccidental InjuryArrestinsBehaviorBindingBiochemicalBiological AssayBlindnessCardiac OutputCellsCessation of lifeChronicCircadian RhythmsDiseaseDrosophila genusEnvironmentExhibitsExposure toEyeGTP-Binding ProteinsGeneticHypothalamic structureJet Lag SyndromeLeadLifeLightMammalsMeasurementMediator of activation proteinMental DepressionMetabolic DiseasesMetabolismMolecularMood DisordersMutationNatural regenerationNatureNeurosecretory SystemsOpsinOrangesPhasePhotosensitivityPhototransductionPhysiologicalPhysiologyPlayProcessPropertyProtein IsoformsPupilReactionResearchResearch PersonnelResistanceRetinaRetinalRetinal Ganglion CellsRetinoidsRhodopsinRoleSamplingSeasonal Affective DisorderSignal TransductionSleepSocietiesStructure of retinal pigment epitheliumSyndromeSystemTestingTherapeutic InterventionVisualVisual system structureXenopus oocytealertnesschromophorecircadian pacemakerconstrictioncopingflyhealth economicslight entrainmentmelanopsinnovelproductivity lossprogramsresearch studyshift worksuprachiasmatic nucleus
中文摘要
描述(由申请人提供):在哺乳动物中,下丘脑视交叉上核中的主生物钟与每日的光/暗周期同步代谢、心输出量、警觉性和睡眠状态。生物钟的慢性不同步是代谢疾病、睡眠和情绪障碍的重要因素。即使是生物钟与自然昼夜周期的暂时不同步,比如时差反应或倒班工作综合症,也是导致生产力下降和意外伤害或死亡的主要原因。因此,对生物钟功能的坚定理解将导致相关疾病的治疗,从而为社会带来健康和经济效益。
英文摘要
DESCRIPTION (provided by applicant): In mammals, a master circadian clock in the suprachiasmatic nucleus of the hypothalamus synchronizes metabolism, cardiac output, alertness, and sleep state with the daily light/dark cycle. Chronic desynchronization of the circadian clock is a significant contributor to metabolic diseases, as well as sleep and mood disorders. Even temporary desynchronization of the clock with the natural day:night cycle, such as in jet lag or shift work syndrome, is a leading cause of productivity loss and accidental injury or death. Thus, a firm understanding of circadian clock function that leads to treatment of related disorders will lead to health and economic benefits of the society.
Synchrony of the clock with the external environment is largely governed by exposure to light received by the eye. However, the precise mechanism by which light entrains the circadian oscillator is not known. An intriguing feature of circadian light entrainment is its resistance to several physiological conditions and mutations that usually causes blindness. This suggested novel photopigment, signaling property and chromophore use may be involved. Recently, a new opsin-like photopigment, melanopsin, was found in the inner retina and has been established as a dominant mediator of light input to the circadian clock. Experiments proposed in this project are to understand some key aspects of melanopsin's photosensitivity. Specifically, we want to understand the spectral and photochemical properties of melanopsin and how its interaction with arrestin modulates such function. We have developed heterologous expression systems for the measurement of melanopsin photosensitivity in living cells and for high level expression of the opsin for biochemical analysis. Using both cellular and biochemical assays we will (a) determine whether melanopsin photopigment exists in two distinct spectrally active and photoreversible states, (b) whether melanopsin has an intrinsic photoisomerase activity to regenerate its own chromophore and (c) how interaction with arrestin determines its photochemical properties. Successful completion of these aims will identify key functional features of melanopsin phototransduction, elucidate the underlying mechanism, and provide potential entry points for therapeutic intervention in circadian disorders.
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