In vivo regulation of bi-directional transport
In vivo regulation of bi-directional transport
批准号:
7496840
负责人:
STEVEN P GROSS
金额:
$7.14万
依托单位国家:
美国
项目类别:
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-07-01 至 2008-08-31
关键词:
BindingBiochemicalBiochemistryBiological AssayCellsComplexCongenital AbnormalityCytoplasmic ProteinDevelopmentDrosophila genusDrug Delivery SystemsDynein ATPaseEmbryoEndosomesFigs - dietaryGenesGeneticGoalsGroupingHumanImmunoprecipitationIn VitroIndividualLasersLeadLengthLipidsLocalizedMicrotubulesMitochondriaModelingMolecularMolecular MotorsMotionMotorMutationNumbersOutcomePathway interactionsProcessProteinsPublic HealthRegulationRegulatory PathwayResearchResolutionRoleRunningSpectrum AnalysisTechniquesTestingTimeTravelVesicleVirusWarWorkdesigndynactinin vivolaser tweezermotor controlparticlepreventprotein functionresearch studytool
中文摘要
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英文摘要
Recent biophysical studies have made great progress in clarifying the function of single molecular
motors in vitro. However, in vivo molecular function is far more complicated than these in vitro studies
predict: contrary to the uni-directional motion observed in vitro, many vesicles or other cargos move bi-
directionally along microtubules, frequently reversing their direction of travel. Nonetheless, transport can be
regulated, so that the cargo moveson averagetothe right place. To understand how such transport is
regulated requires the development of new tools capable of quantifyingin vivothe motion of individual
cargos with high temporal and spatial resolution. The research develops such biophysical tools, and
combines them with genetics and biochemistry to investigate the function of motors or motor complexes in
vivo.
Specifically, bi-directional motion of lipid droplets in early Drosophila embryos is investigated. The work
can be conceptually divided into two complimentary approaches. The first, the biophysical characterization of
the effects of mutations, uses optical tweezers and particle tracking and analysis to determine the specific
physical role of proteins in the transport pathway. One goal is to test a theoretical framework hypothesizing
the existence of a complex with certain functions, and place each protein within this framework. The second
approach employs biochemical techniques to identify additional proteins involved in the regulation of
transport, and determine relevant interactions between the different proteins. This information will clarify at
the molecular level how the biophysically determined functions come about, and will directly investigate the
hypothesized complex. The function of the proteins identified in the biochemical approaches will be directly
investigated using the biophysical assays.
Bi-directional transport is directly related to public health: viruses such as herpes spread through cells
in a bi-directional manner; many important cargos like mitochondria and endosomes move bi-directionally.
Further, mutation in some of the genes investigated here, such as Lis1, lead to human birth defects. Finally,
a better understanding of transport might allow the design of new drug delivery systems.
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In vivo regulation of bi-directional transport
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In vivo regulation of bi-directional transport
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In vivo regulation of bi-directional transport
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依托单位:
海外基金