Cellular and Molecular Mechanisms of Myotube Pathfinding
Cellular and Molecular Mechanisms of Myotube Pathfinding
批准号:
9260424
负责人:
AARON N JOHNSON
金额:
$5.28万
依托单位国家:
美国
项目类别:
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-09-15 至 2017-08-31
关键词:
ActinsActomyosinAllelesAreaBehaviorBiochemicalBiological AssayBiologyCellsChemotaxisCollectionCuesDataDefectDevelopmentDiseaseDrosophila genusEmbryoEmployee StrikesFibroblast Growth FactorFibroblast Growth Factor ReceptorsFilopodiaGenesGeneticGenetic ScreeningHealthHumanKnowledgeMolecularMorphogenesisMuscleMuscle DevelopmentMuscle FibersMuscle hypotoniaMutationMyoblastsMyopathyNamesNotch and Wnt Signaling PathwayOutcomePathway interactionsPatientsPhosphotransferasesProtein KinaseProtein-Serine-Threonine KinasesPublishingRegulatory PathwayRoleSarcomeresSignal TransductionSiteSite-Directed MutagenesisSkeletal MuscleStagingTechniquesTendon structureTestingTransgenic OrganismsTropomyosinWorkclinical phenotypecongenital myopathyearly onsetembryo cellextracellulargenetic regulatory proteinimaging geneticsin vivoinsightmutantmyogenesisnovelreceptorrespiratorytool
中文摘要
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英文摘要
Project Summary
Congenital myopathies (CM) are a heterogeneous collection of disorders defined by early onset
hypotonia. Some myopathies can progress to extreme conditions in which patients develop
respiratory complications and even require assistance for mobility. Mutations in genes associated
with actin dynamics have been identified in patients with CMs, including Tropomyosins. We found
that Drosophila Tropomyosin 2 (Tm2) directs embryonic skeletal muscle development by promoting
myoblast fusion, myotube elongation, and sarcomere assembly. These surprising results argue that
defects in myofiber development contribute to the clinical phenotypes associated with CMs.
There remain critical knowledge gaps in our understanding of skeletal muscle development. In
particular, nascent myotubes must elongate and attach to the appropriate tendon cells to form a
functional contractile unit. However, the molecules that guide myotubes to their muscle attachment
sites remain largely unknown. In addition, the mechanisms by which myotubes respond to
chemotactic signals are unclear. We have used forward genetic screens and cutting edge
transcriptional profiling to identify myotube guidance molecules and intracellular effectors of myotube
elongation. Our preliminary work has generated unique genetic tools and novel mechanistic insights
that will allow us to characterize the central pathways and mechanisms that direct myotube
elongation. The overall hypothesis for this application is that filopodia are the key effectors of
myotube pathfinding, and that filopodial behavior is dictated by external pathfinding cues, intracellular
protein kinases, and actin regulatory proteins. This project will achieve the following aims: (1) define
the cellular pathways by which Tropomyosin regulates myogenesis, (2) characterize novel
intracellular effectors of myotube pathfinding, and (3) characterize chemotactic mechanisms that
direct myotube pathfinding. These studies will make substantial inroads into an emerging area of
muscle biology that has the potential to uncover novel mechanisms that contribute to muscle disease.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
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国内基金
海外基金
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依托单位: