Microfluidic nanoarrays for high-throughput analysis of biological nanostructures
Microfluidic nanoarrays for high-throughput analysis of biological nanostructures
批准号:
10019578
负责人:
Nathan J. Wittenberg
金额:
$22.47万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-09-20 至 2023-08-31
关键词:
AccountingActinobacillus actinomycetemcomitansApoptoticBacteriologyBiologicalBiological AssayBiologyCellsCellular StructuresChemicalsChemistryComplexDevelopmentDiseaseDrosophila melanogasterElectric StimulationElectrochemistryEndocytosisEventExocytosisFluorescenceFluorescence MicroscopyGoalsGram-Negative BacteriaHealthHeterogeneityHumanImageIndividualLengthLiposomesMass Spectrum AnalysisMeasurementMeasuresMembraneMethodsMicrofluidic MicrochipsMicrofluidicsMissionMonitorMorphologyNanoarray Analytical DeviceNanostructuresNeuronsNeurosciencesNeurotransmittersOpticsOrganellesPatternPeriodicityPhysiologicalPlayPopulationPresynaptic TerminalsPrintingPropertyReagentResearchRoleSecretory VesiclesSignal TransductionSourceSpecificitySpottingsStimulusStructureSubcellular structureSurfaceSynaptosomesTechniquesTimeTissuesToxinUnited States National Institutes of HealthVesicleVibrio choleraeWorkanalogbasebiological heterogeneitybiological systemsblindbrain tissuecytolethal distending toxindensitydesignexosomeexperimental studyextracellular vesiclesflyfunctional grouphigh throughput analysisindium tin oxideinterestleukotoxinmicrovesiclesnanodotnanoscaleneurotransmitter releaseneurotransmitter uptakenew technologynovel strategiesparticlepreventsingle cell analysissubmicronuptakevirtual
中文摘要
点击翻译按钮获取中文摘要
英文摘要
Project Summary / Abstract
Small membrane-bound nanostructures are ubiquitous in biology. Occupying the subcellular size regime,
biological nanostructures include organelles, secretory vesicles, extracellular vesicles, such as exosomes,
microvesicles, apoptotic bodies, and outer membrane vesicles (OMV) produced by Gram-negative bacteria.
Additionally, sub-micron structures such as synaptosomes, which are isolated presynaptic terminals of neurons,
can be derived from homogenized tissues. All of these structures, even when isolated from a single source, can
display an extreme amount of heterogeneity in their chemical, physical, and physiological properties. Biological
heterogeneity has long been analyzed and accounted for by making measurements on single cells. Indeed, the
broad field of single cell analysis has used traditional analytical techniques, including separations,
electrochemistry, and mass spectrometry to reveal properties of single cells or subcellular structures that are
hidden from traditional bulk ensemble assays. Bulk ensemble assays are also blind to the asynchronous events
that are revealed by single cell, particle, or molecule studies. However, measurements on single cells, particle,
or molecules are intrinsically low-throughput unless some sort of multiplexing strategy is employed. Imaging is a
common multiplexing approach, however it too can be relatively low-throughput unless steps are taken to pack
as many single objects as possible in a field of view. Therefore new strategies are required to make high-
throughput measurements on single biological nanostructures to reveal heterogeneities in chemical and
physiological properties. Here we propose a high-throughput microfluidic nanoarray approach that facilitates
single entity measurements on hundreds to tens of thousands of individual biological nanostructures
simultaneously. Our platform relies on ultrahigh density patterning of nanodots of molecules that are used to
specifically capture single objects of interest. The nanodot capture arrays are then integrated into multichannel
microfluidic devices, and individual liposomes, OMVs, or synaptosomes are captured by the nanodots. Our
microfluidic designs allow spatial selectivity in delivery of different reagents or gradients of reagents to different
zones of the arrays. This approach is applicable to virtually any membrane-bound nanoscale biological
nanostructure. To demonstrate the versatility of this platform, it will be used for a number of different assays on
liposomes, OMVs, and synaptosomes. Since these assays are conducted on large groups of individual
structures, they can illuminate hidden distributions and heterogeneity of chemical and physiological properties,
including toxin content on OMV surfaces or correlation between toxin content and OMV size. In synaptosomes
we will examine the heterogeneities in intrasynaptosomal Ca2+ dynamics, neurotransmitter uptake and release,
and membrane cycling by endocytosis/exocytosis.
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会议论文
Elucidating the membrane properties regulating antimicrobial peptidebinding to bacterial vesicles
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批准号:10796034
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项目类别:
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资助金额:$45.7万
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财政年份:2023
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负责人:Nathan J. Wittenberg
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依托单位:
Microfluidic nanoarrays for high-throughput analysis of biological nanostructures
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批准号:9805917
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项目类别:
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资助金额:$18.48万
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财政年份:2019
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负责人:Nathan J. Wittenberg
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依托单位:
海外基金