Oxygen dependence of ROS generation in contracting single isolated myofibers
Oxygen dependence of ROS generation in contracting single isolated myofibers
批准号:
7648255
负责人:
MICHAEL C HOGAN
金额:
$33.99万
依托单位国家:
美国
项目类别:
财政年份:
1991
资助国家:
美国
项目状态:
已结题
起止时间:
1991-09-30 至 2013-03-31
关键词:
AddressAffectAgeAging-Related ProcessAntimycin AAntioxidantsApoptosisAreaBehaviorBuffersCell Culture TechniquesCell DeathCell HypoxiaCell physiologyCellsCellular biologyCessation of lifeComplexConfocal MicroscopyContractsDataDependenceDiseaseElectron TransportElectron Transport Complex IIIElectronsEnvironmentEventExcisionExerciseFast-Twitch Muscle FibersFatigueFiberFluorescenceFluorescent ProbesFrequenciesGene ExpressionGene Expression RegulationGenerationsGoalsHSP72 proteinHealthHeart DiseasesHeterogeneityHumanHydrogen PeroxideHydroxyl RadicalHypoxiaImageImaging TechniquesInflammatoryInvestigationLaboratoriesLeadLifeLinkLocationMalignant NeoplasmsMeasurementMeasuresMediator of activation proteinMembrane PotentialsMessenger RNAMetabolicMetabolismMitochondriaModelingMonitorMusMuscleMuscle CellsMuscle ContractionMuscle FibersMuscle functionNG-Nitroarginine Methyl EsterNitric OxideNitric Oxide SynthaseNormal CellOutputOxidantsOxidasesOxidative PhosphorylationOxidative StressOxygenOxygen measurement, partial pressure, arterialPPAR gammaPathologyPatternPerformancePhysiologicalPositioning AttributePreparationProcessProductionPropertyProteinsProtocols documentationReactive Oxygen SpeciesReportingResearchRespirationRestRoleRotenoneRu 360Signal PathwaySignal TransductionSkeletal MuscleSlow-Twitch Muscle FibersSourceSpecificitySuperoxide DismutaseSuperoxidesTechniquesTestingTimeUncertaintyVascular Endothelial Growth FactorsWorkarginine methyl estercell injurydensitydihydroethidiumdiphenyleneiodoniumebselenextracellularimprovedinhibitor/antagonistmRNA Expressionmitochondrial membranenovelpublic health relevancereceptorresearch studyrespiratoryresponserhod-2skeletaluptake
中文摘要
描述(由申请人提供): 虽然已知骨骼肌内的线粒体和非线粒体来源产生活性氧(ROS)已有多年,但ROS产生的重要性最近才变得清楚。ROS的产生与衰老过程和许多疾病状态有关,从癌症到心脏病,再到与炎症过程相关的病理学。此外,最近已经清楚,ROS不仅对某些细胞功能有害(在极端条件下诱导细胞凋亡),而且在许多细胞信号传导事件中充当必需介质,并且已经提出调节与细胞保护免受氧化应激和对运动的必需细胞适应相关的基因表达的重要变化。然而,在骨骼肌收缩和不同的氧合条件下调节ROS代谢的因素仍然不完全清楚。特别是,特殊的行为,ROS产生在缺氧期间,其中较高的ROS产生是矛盾的诱导,尽管减少O2的紧张局势,最近才被清楚地证明。最后,虽然已经表明骨骼肌中ROS的产生对收缩性和肌肉功能有显著影响,但骨骼肌中ROS的产生依赖于线粒体呼吸速率、功输出、细胞内氧合、抗氧化剂缓冲和肌纤维类型的方式仍不清楚。这些不确定性中的大部分是由于与全肌肉模型内的不均匀性、不受控制的细胞外环境、可变的肌纤维募集模式等相关的混杂因素。本提案的目的是使用分离的单个小鼠骨骼肌纤维模型,其中细胞外环境可以精确控制,并且使用非侵入性成像技术仔细监测细胞内环境,为了验证与描述调节ROS生成的因素、细胞内ROS形成的位置以及在不同氧合条件下收缩慢缩和快缩纤维中ROS调节的基因表达相关的假设。在两种纤维类型的良好对照实验中,细胞外PO2在收缩期间变化,将测量线粒体呼吸和膜电位、ROS产生和清除、细胞内PO2、收缩功能、细胞溶质和线粒体[Ca2+]、与ROS产生相关的许多细胞内信号、细胞完整性的抗氧化保护和基因表达调控(使用QPCR)。该应用的优势在于使用我们的单肌纤维模型,从而减少了与解释来自整个肌肉、细胞培养或分离的线粒体模型的结果相关的许多困难,并提供了从具有正常生理细胞内环境的存活的、健康的完整肌纤维生成的数据。该应用提供了一个独特的机会来研究调节骨骼肌中ROS代谢的因素,从而对理解和潜在地改善人类健康具有重要意义。公共卫生相关性。 直到最近才清楚,在运动期间和低氧条件下产生的活性氧对肌肉功能和适应性有显着影响。这项研究的目的是阐明在运动和低氧条件下影响活性氧产生的调节因素,以及这些变化如何影响肌肉性能和对运动的适应性反应。
英文摘要
DESCRIPTION (provided by applicant): While it has been known for a number of years that mitochondria and non-mitochondrial sources within skeletal muscle produce reactive oxygen species (ROS), the significance of ROS generation has only become clear recently. ROS generation has become implicated in the aging process and numerous disease states, from cancer to heart disease to pathologies related to inflammatory processes. In addition, it has recently become clear that ROS are not only deleterious to some cell functions (inducing apoptosis under extreme conditions) but serve as essential mediators in a number of cell signaling events and have been proposed to modulate important changes in gene expression related to cellular protection from oxidative stress and essential cellular adaptations to exercise. Yet, the factors that modulate ROS metabolism during skeletal muscle contractions and varied conditions of oxygenation remain incompletely understood. In particular, the peculiar behavior of ROS generation during hypoxia, in which higher ROS generation is paradoxically induced despite reduced O2 tensions, has only recently been clearly demonstrated. Finally, while it has been shown that ROS generation in skeletal muscle has significant effects on contractility and muscle function, it remains unclear as to the manner in which generation of ROS in skeletal muscle is dependent on the rate of mitochondrial respiration, work output, intracellular oxygenation, antioxidant buffering, and muscle fiber type. Much of these uncertainties are due to confounding factors related to inhomogeneities within whole muscle models, uncontrolled extracellular environments, variable muscle fiber recruitment patterns, etc. The purpose of this proposal is to use an isolated single mouse skeletal myofiber model, in which the extracellular environment can be precisely controlled and the intracellular environment carefully monitored using non-invasive imaging techniques, to test hypotheses related to delineating the factors regulating ROS generation, the locations of intracellular ROS formation, and ROS modulated gene expression in contracting slow- and fast-twitch fibers under varied oxygenation conditions. In well-controlled experiments in both fiber types with the extracellular PO2 varied during contractions, measurements will be made of mitochondrial respiration and membrane potential, ROS generation and removal, intracellular PO2, contractile function, cytosolic and mitochondrial [Ca2+], numerous intracellular signals related to ROS production, antioxidant protection of cellular integrity, and regulation of gene expression (using QPCR). The strength of this application is in the use of our single muscle fiber model, thereby reducing many of the difficulties related to interpreting results from whole muscle, cell culture, or isolated mitochondria models, and providing data generated from viable, healthy intact myofibers with a normal physiological intracellular environment. This application provides a singular opportunity to study the factors that regulate ROS metabolism in skeletal muscle and thereby has significant implications for understanding and potentially improving human health. PUBLIC HEALTH RELEVANCE. It has only recently become clear that the production of reactive oxygen species during exercise and during low oxygenation conditions has a significant impact on muscle function and adaptation. It is the goal of this proposed research to elucidate the regulatory factors that influence reactive oxygen species production during exercise and low oxygen conditions and how these changes affect muscle performance and the adaptive response to exercise.
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