Single-molecule and super-resolution imaging methods with maximum photon efficiency, increased spatiotemporal resolution and high detection sensitivity in densely crowded environments
Single-molecule and super-resolution imaging methods with maximum photon efficiency, increased spatiotemporal resolution and high detection sensitivity in densely crowded environments
批准号:
10005376
负责人:
Alexandros Pertsinidis
金额:
$22.45万
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:
2019-09-01 至 2021-11-30
关键词:
3-DimensionalAlgorithmsAreaBiochemistryBiologicalBiological ProcessBiomedical ResearchBudgetsCell NucleusCellsCellular StructuresCellular biologyComplexCrowdingDNA Polymerase IIDataDetectionDevelopmental BiologyDiffuseDisciplineDiseaseEnvironmentEquilibriumEventFluorescenceFluorescent ProbesGeneticGoalsHealthImageImaging DeviceImmunologyIn SituIndividualInterferometryLabelLengthMacromolecular ComplexesMethodsMicroscopeMicroscopyMolecularMolecular StructureMonitorMovementNeurosciencesOpticsOrganismPhasePhotobleachingPhotonsProcessRNAResolutionSamplingSignal TransductionSpecificitySpecimenStructureTechniquesTechnologyThree-Dimensional ImagingTimebasebiological systemsexperimental studyfluorescence imagingfluorophoregenomic locusimaging approachimaging modalityin vivoinstrumentinterestknowledge basemacromolecular assemblymeetingsmillisecondmolecular imagingmolecular scalenanometernew technologynovelparticlephoto switchprototypesingle moleculespatiotemporalstructural biologytemporal measurementthree-dimensional visualizationtooltraffickingtranscription factor
中文摘要
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英文摘要
ABSTRACT
Reaching a more complete understanding of biological processes and mechanisms that
underlie health and disease demands a better integration of information spanning multiple
length and time scales. Super-resolution microscopy and single-molecule approaches have
emerged as potent tools that extend the spatial resolution and detection sensitivity in live
biological imaging. However, the current state-of-the-art techniques often achieve limited 3D
resolution that precludes visualizing spatial organization at the molecular scale. Moreover
balancing trade-offs between temporal and spatial resolution, while operating with a limited
photon budget often results in severely shortened single-molecule observation times. Finally,
many microscope configurations are challenged when imaging weak signals from single-
molecules, especially due to high background in crowded cellular specimens. Thus, although
promising, the full potential of single-molecule/super-resolution methods for transforming our
molecular understanding of biological processes has yet to be realized. To fill critical technical
gaps, new optimized microscope configurations are needed - that can operate at the limits of
spatiotemporal resolution while maximizing the information content of dim fluorescence signals.
We hypothesize that this goal can be achieved through novel combinations of 3D interferometry,
targeted fluorescence switching, while further harnessing emerging photon-efficient algorithms
to increase resolution as well as prolong total observation times. Based on these ideas we
propose to develop novel super-resolution and single-molecule fluorescence imaging tools,
focusing on two specific aims: (1) To extend the spatiotemporal scales of localization-based
single-molecule imaging and tracking to 1 nanometer isotropic 3D resolution and to ~1,000
data-point in vivo observation traces at down to (sub)millisecond sampling rates; (2) To achieve
real-time single-molecule detection sensitivity in addressable 3D volumes, at presence of micro-
Molar background concentrations, and inside highly crowded intracellular environments. The
new techniques will significantly increase our abilities to interrogate dynamic biological
processes with molecular detail, thus having widespread and immediate impact across
biomedical disciplines.
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Ultra-stable, photon-efficient cryogenic super-resolution fluorescence imaging for visualizing vitrified biological samples with molecular-scale resolution
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批准号:10707375
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项目类别:
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资助金额:$22.13万
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财政年份:2022
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负责人:Alexandros Pertsinidis
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依托单位:
Ultra-stable, photon-efficient cryogenic super-resolution fluorescence imaging for visualizing vitrified biological samples with molecular-scale resolution
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批准号:10510195
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Mechanisms of enhancer-promoter communication, genome organization and transcription control
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批准号:10672880
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项目类别:
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资助金额:$48.43万
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财政年份:2022
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负责人:Alexandros Pertsinidis
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依托单位:
Mechanisms of enhancer-promoter communication, genome organization and transcription control
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批准号:10343329
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项目类别:
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资助金额:$48.43万
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财政年份:2022
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负责人:Alexandros Pertsinidis
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依托单位:
Development of 3D interferometric super-resolution methods for imaging dynamic, multi-component molecular systems, in single cells and in multi-cellular environments
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批准号:10245100
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项目类别:
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资助金额:$40.15万
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财政年份:2019
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负责人:Alexandros Pertsinidis
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依托单位:
Single-molecule and super-resolution imaging methods with maximum photon efficiency, increased spatiotemporal resolution and high detection sensitivity in densely crowded environments
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批准号:9809804
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项目类别:
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资助金额:$26.94万
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负责人:Alexandros Pertsinidis
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依托单位:
Development of 3D interferometric super-resolution methods for imaging dynamic, multi-component molecular systems, in single cells and in multi-cellular environments
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批准号:10022131
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资助金额:$37.8万
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财政年份:2019
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依托单位:
Understanding Gene Transcription from First-Principles: A single-molecule study
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批准号:8355484
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项目类别:
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资助金额:$256.95万
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财政年份:2012
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负责人:Alexandros Pertsinidis
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依托单位:
海外基金