Aging, Exercise and Mechanisms of Altered Tongue Function
Aging, Exercise and Mechanisms of Altered Tongue Function
批准号:
7212958
负责人:
NADINE P CONNOR
金额:
$30.28万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-12-05 至 2011-11-30
关键词:
AgeAgingAnimalsAreaBehaviorBehavioralBiochemicalBiochemistryBrain StemBrain-Derived Neurotrophic FactorCell NucleusCephalicCharacteristicsClinicalConditionContractsControl AnimalControl GroupsDataDeglutitionDeglutition DisordersDendritesDenervationElderlyEvaluationExerciseFoundationsFunctional disorderHead and Neck MuscleHistologyImpairmentInterventionInvestigationKnowledgeLaboratoriesLimb structureLinkLiteratureMediatingMediator of activation proteinMessenger RNAModelingMolecularMolecular BiologyMorphologyMotorMotor NeuronsMuscleMuscle FibersMuscular AtrophyMyosin Heavy ChainsNerveNerve Growth Factor ReceptorsNeuraxisNeuromodulatorNeuromuscular JunctionNeuronal PlasticityNeuronsNeurosciencesNeurotrophin 3NumbersPathway interactionsPeripheralPersonsPhysiologicalPhysiologyPreventionProcessPropertyProtein IsoformsProteinsRattusRelative (related person)ResearchResearch PersonnelResistanceRodent ModelRoleSerotoninSkeletal MuscleSpeechStandards of Weights and MeasuresStructureSynapsesSynaptic plasticitySystemTechniquesTestingTherapeuticTherapeutic InterventionTongueTrainingVeinsWorkage effectage groupage relatedagedawakebasehuman studyhypoglossal nucleusinnovationmiddle ageneurochemistryneuromuscular systemneurotrophic factorneurotrophin 4preventprogramsreceptorreinnervationsarcopeniasize
中文摘要
描述(由申请人提供):大量证据表明,肌肉减少症(肌肉大小、力量和功能的年龄相关变化)与运动神经元、神经-肌肉连接和肌肉本身的解剖学和生理学变化有关。除了四肢的骨骼肌外,与年龄相关的变化无疑也发生在颅肌和支配它们的脑干神经元上。舌肌和舌下神经运动神经元结构和功能的改变可能导致与年龄相关的吞咽和言语能力下降。然而,很少有人知道的病理生理学基础的年龄相关的变化,在颅神经肌肉系统。在我们的实验室中,我们已经发现了与年龄相关的变化,在舌肌,神经肌肉接头(NMJ),舌下运动神经元和它们的多巴胺能神经调节输入在啮齿动物模型。在拟议的研究中,我们计划使用我们在清醒大鼠中开发的渐进式阻力舌头运动计划来研究运动在预防或逆转舌头和舌下神经核内与年龄相关的变化中的作用。我们的假设是,年龄相关的变化,在舌下神经核,再加上去神经支配的过程中,是舌肌减少症的主要贡献者,这些过程可以通过运动来预防或逆转。我们将测试这一假设,通过比较生理,形态,生化和分子参数的舌肌和舌下神经运动神经元在年轻,中年和老年大鼠进行了行为舌运动与那些在假运动对照组。本研究有五个具体目标。在青年、中年和老年大鼠中,我们将确定:(1)舌力和肌肉收缩特性随年龄和运动而变化的程度,以及预测舌肌收缩特性变化的形态学、生物化学和分子变量;(2)年龄和运动对舌肌形态学和生物化学特性的影响;(3)年龄和运动对神经-肌肉连接形态学的影响;(4)年龄和运动对舌下神经核神经元可塑性的影响;(5)神经营养因子在年轻、中年和老年大鼠运动诱导的神经元可塑性中的作用。这项工作是创新的和重要的,因为运动可能会影响舌运动系统的神经保护作用的机制在很大程度上是未知的。我们的神经肌肉模型是第一个评估行为锻炼计划对颅运动神经元和舌头生理的影响。此外,这项工作是非常重要的,在提供一个基础,了解机制的基础上,假定的好处,运动作为一种治疗干预与年龄有关的变化,在颅肌。
英文摘要
DESCRIPTION (provided by applicant): There is an overwhelming body of evidence that links sarcopenia, the age-related changes in muscle size, strength, and function, to anatomical and physiological changes within motoneurons, nerve-muscle connections, and the muscles themselves. In addition to skeletal muscle in the limbs, age-related changes undoubtedly occur in cranial muscles and the brainstem neurons that innervate them. Alterations in tongue muscle and hypoglossal motoneuron structure and function may contribute to the age-related decline in swallowing and speech. However, little is known about the pathophysiology underlying age-related changes in the cranial neuromuscular system. In our laboratories, we have found age-related changes in tongue muscles, the neuromuscular junction (NMJ), and in hypoglossal motoneurons and their serotonergic neuromodulatory inputs in a rodent model. In the proposed research, we plan to use a progressive resistance tongue exercise program we have developed in awake rats to investigate the role of exercise in preventing or reversing age-related changes within the tongue and hypoglossal nucleus. Our hypothesis is that age-associated changes in the hypoglossal nucleus, together with denervation-reinnervation processes, are major contributors to lingual sarcopenia, and that these processes can be prevented or reversed by exercise. We will test this hypothesis by comparing physiological, morphological, biochemical, and molecular parameters of tongue muscles and hypoglossal motoneurons in young, middle-aged, and old rats that have undergone behavioral tongue exercise versus those in a sham-exercise control group. The proposed research has 5 specific aims. In young, middle-aged and old rats, we will determine: (1) the degree to which behavioral tongue forces and muscle contractile properties change as a function of age and exercise, and morphological, biochemical, and molecular variables that are predictive of changes in tongue muscle contractile properties; (2) the effect of age and exercise on morphological and biochemical properties of tongue muscles; (3) the effect of age and exercise on morphology of nerve-muscle connections, (4) the effect of age and exercise on neuronal plasticity in the hypoglossal nucleus; and, (5) the role of neurotrophins in exercise-induced neuronal plasticity in young, middle-aged, and old rats. This work is innovative and important because the mechanisms by which exercise may impact neuroprotective effects in the lingual motor system are largely unexplored. Our neuromuscular model is the first to evaluate the effects of a behavioral exercise program on cranial motoneurons and tongue physiology. Further, this work is highly significant in providing a basis for understanding mechanisms underlying the putative benefits of exercise as a therapeutic intervention for age-related changes in cranial muscles.
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