Metabolic markers for mitochondrial function
Metabolic markers for mitochondrial function
批准号:
8335450
负责人:
Cynthia Therese McMurray
金额:
$44.08万
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-20 至 2016-06-30
关键词:
1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine1-Methyl-4-phenylpyridiniumAbbreviationsAddressAdenosine TriphosphateAffectAgeAmino AcidsAnimal ModelAnimalsBiological MarkersBiologyBloodBlood - brain barrier anatomyBrainCalciumCellsChronicChronic DiseaseClinical MarkersComplexCytosolDefectDetectionDiseaseEarly DiagnosisEnvironmentEnvironmental ExposureExposure toFunctional disorderHeterogeneityHumanIndividualInjuryInterventionLeadLinkMass Spectrum AnalysisMeasurableMeasurementMeasuresMetabolicMetabolic DiseasesMetabolic MarkerMethodologyMitochondriaModelingMonoamine OxidaseNanostructuresNoiseOxidation-ReductionOxidative PhosphorylationPatternPreventive InterventionProductionPropertyPropionic AcidsResolutionRespirationRodentRotenoneSamplingSignal TransductionSorting - Cell MovementStagingSymptomsSynaptosomesSystemTechniquesTechnologyTestingTissuesToxic Environmental SubstancesToxic effectToxicant exposureToxinUbiquitinUrineVariantbasebrain cellcell motilitycell typedopamine transporterfunctional declinein vivomitochondrial dysfunctionmouse modelmulticatalytic endopeptidase complexnervous system disordernew technologyoxidative damagepreventresponsetool
中文摘要
点击翻译按钮获取中文摘要
英文摘要
ABSTRACT
Mitochondrial (MT) dysfunction is a factor in numerous chronic diseases and the toxicity related to
environmental exposures, but early deficits in MT function are difficult to detect. Current clinical markers for
mitochondrial dysfunction typically detect only advanced symptoms of tissue injury and disease, yet the
sensitivity to detect mild MT dysfunction and heterogeneity within tissue has hampered robust identification of
meaningful biomarkers at early stages. Mitochondrial biology is variable; and chronic, low level MT dysfunction
may be below the detection sensitivity of many techniques. We need new tools to enhance the mechanistic
understanding of environmentally-induced mitochondrial toxicity at early stages to enable prevention and
intervention. To address this problem, we have developed and applied a new technology for single cell mass
spectrometry, called Nanostructure-Initiator Mass Spectrometry (NIMS). NIMS has both the single cell
resolution (1-10 ¿m) and the high sensitivity (attomolar) needed to detect early biomarkers of MT dysfunction
as metabolic "signatures" in individual cells. NIMS offers a number of advantages over standard mass
spectrometry, including (1) ultra-high sensitivity, (2) high selectivity, and (3) single cell resolution to reduce
sample complexity. We apply NIMS to identify metabolic signatures for early MT dysfunction in the brain and
blood of diseased animals or animals treated with environmental toxins at "subclinical" levels. In Aim 1, we use
NIMS to generate metabolic signatures for MT decline. In Aim 2, we will functionally test whether the biomarker
reflects functional changes in MT or MT within the context of the cell. NIMS can be applied to any tissue and
any cell type, to quantitatively sort out complex changes that occur in dynamic cellular environments, and
minimizes the inherent system heterogeneity that has confounded efforts in detecting meaningful markers of
MT decline.
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