OmpG nanopore for single molecule protein sensing
OmpG nanopore for single molecule protein sensing
批准号:
9244040
负责人:
Min Chen
金额:
$28.54万
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:
2016-04-01 至 2021-03-31
关键词:
AchievementAffectAffinityAmino Acid SequenceAntibodiesAreaBacteriaBinding ProteinsBinding SitesBiologicalBiological MarkersBiomedical ResearchBiotinChargeChemicalsDataDetectionDevelopmentDevicesDiagnosisDiseaseDisease OutbreaksDockingElementsEngineeringEscherichia coliFingerprintFluorescence-Activated Cell SortingFutureG-substrateGTP-Binding ProteinsGoalsHandHaptensImmunoassayLengthLibrariesLigandsMass Spectrum AnalysisMeasuresMembraneMembrane ProteinsMethodsModificationMolecularMolecular ConformationMono-SNaturePatternPeptidesProcessProtein ArrayProteinsRandomizedRouteSiteStreptavidinStructureSurfaceTechnologyTestingTimeVariantViralVirus Diseasesbasecancer diagnosiscancer therapycost effectivedesignextracellularflexibilityhigh throughput screeninginsightinterestmutantnanoporenovelnovel strategiespathogenpeptide Gpolypeptideportabilityprotein aminoacid sequenceprotein expressionprotein protein interactionprotein purificationprotein structurepublic health relevancescreeningsensorsingle moleculevirtualvoltageweapons
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Our central goal is to create a nanopore sensor that can be tuned to specifically detect virtually any of these disease-related protein. The sensor is an engineered form of outer membrane protein G (OmpG) from E. coli. The loops that connect the strands of OmpG's β-barrel are either appended with a ligand or lengthened with a recognition sequence to create the specific sensing elements. Our preliminary results demonstrate that the OmpG nanopore sensor is remarkably sensitive, able to distinguish variants within a mixture of antibodies that were all raised against the same hapten. To expand the utility of the sensor, we will explore the fundamental mechanisms that govern sensor-target interactions. Furthermore, the incorporation of new binding sites within OmpG's loops will proceed by two routes. The first is rational design, where we will incorporate known polypeptide sequences that recognize established targets. The second route takes advantage of OmpG's expression in the E. coli outer membrane. A randomized library of OmpG mutants will be selected for novel target affinity directly from the bacteria using a high- throughput screening and enrichment approach.
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海外基金