Reversing Skeletal Muscle Myopathy by Hydrogen Sulfide
Reversing Skeletal Muscle Myopathy by Hydrogen Sulfide
批准号:
10357570
负责人:
Suresh C. Tyagi
金额:
$33.54万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-09-21 至 2024-01-31
关键词:
AngiographyAtrophicAttenuatedBiological AssayBirthBody WeightCRISPR/Cas technologyCaliberCell Differentiation processCell LineCell ProliferationChildChronicCollagenCystathionine beta-SynthaseCysteine DesulfhydraseDataDepositionDeteriorationEndothelial CellsEnzymesExhibitsFOXO1A geneFatigueGDF8 geneGenerationsGenesGenetic TranscriptionGoalsHomocysteineHomocystinuriaHydrogen SulfideHyperhomocysteinemiaHypoxiaImageImmunohistochemistryImpairmentIn VitroIschemiaIsolated limb perfusionLasersLeadLigationMeasuresMediatingMetabolicModalityMusMuscleMuscle FibersMuscular AtrophyMutationMyopathyNatural regenerationPhosphorylationPlasmaPredispositionProto-Oncogene Proteins c-aktRoentgen RaysRoleSignal TransductionSignaling MoleculeSkeletal MuscleStarvationTeenagersTestingTherapeuticTissuesTranscriptTransduction GeneTransgenic OrganismsVascular Endothelial Growth Factorsattenuationdensitydesignfemoral arteryfrailtyhypoxia inducible factor 1in vivoknock-downlimb ischemiamuscle regenerationnovelpreventresponsesatellite cellskeletal muscle wastingsmall moleculetissue oxygenationvasculogenesis
中文摘要
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英文摘要
Children born with severe homocystinuria due to homozygous cystathionine beta synthase deficiency (CBS-/-)
exhibit poor body weights, skeletal muscle myopathy and die in teenage. Although mice with homozygous CBS
mutation die shortly after birth, the heterozygous CBS-/+ survives. Our preliminary data suggests that
enzymes, CBS and cystathionine gamma-lyase (CSE) that irreversibly remove homocysteine (Hcy) by
converting to hydrogen sulfide (H2S), are decreased in skeletal muscle. Although lowering of Hcy levels and
generation of H2S is beneficial, the mechanism by which HHcy causes of skeletal muscle wasting and frailty is
unknown. The long-term goal of this project is to understand the mechanism of muscle wasting in HHcy and
evaluate the potential beneficial effects of H2S signaling in reversing skeletal muscle wasting and myopathy.
The central hypothesis of this proposal is that HHcy causes skeletal muscle deterioration by
compromising vasculogenesis, by enhancing muscle atrophy and by limiting skeletal muscle
regeneration and H2S reverses these changes. We will test this hypothesis by following three specific aims:
Specific Aim #1: To determine whether the HHcy inhibits muscle specific AKT, HIF-1, and AMPK
signaling and impairs vasculogenesis and H2S reverses impaired vasculogenesis.
Specific Aim #2: To determine whether the HHcy attenuates PGC-1 signaling and instigates atrogene
expression and causes muscular atrophy and H2S mitigates muscle atrophy.
Specific Aim #3: To determine whether the HHcy enhances TGF-1 signaling and myostatin levels,
thereby suppresses muscle regeneration and H2S ameliorates these changes.
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海外基金