Targeting Burkholderial β-lactamases: Structure, function, and regulation
Targeting Burkholderial β-lactamases: Structure, function, and regulation
批准号:
9763694
负责人:
KRISZTINA Margaret PAPP-WALLACE
金额:
$0.0万
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-10-01 至 2023-09-30
关键词:
AddressAffectAffinityAntibiotic ResistanceAntibiotic TherapyAntibioticsAsthmaAwardBacteremiaBindingBiochemicalBiologicalBiological AssayBurkholderia InfectionsBurkholderia cepacia complexCeftazidimeCellsCellular MorphologyCephalosporinaseCessation of lifeChromosomesChronicChronic Obstructive Airway DiseaseClinicalComplexCrystallizationCrystallographyCystic FibrosisDevelopmentDisease OutbreaksDrug resistanceElectrophoretic Mobility Shift AssayExposure toFluorescenceGene ExpressionGene ProteinsGeneral PopulationGenesGenetic TranscriptionGoalsHealthcare SystemsImipenemImmunoblottingIndividualInfectionIsoelectric FocusingKineticsKnock-outLactamaseLactamsLeadLibrariesLigandsLinkLung diseasesMeasuresMediatingMedicalMembraneMicroscopyModelingMulti-Drug ResistanceMutationNew AgentsOrganismOutcomePPBP genePatientsPenicillin-Binding ProteinsPhase-Contrast MicroscopyPhenotypePiperacillinPneumoniaPredispositionPreparationPrevalenceProductionProtein InhibitionProteinsRegulationResistanceRetrospective StudiesRiskSpectrometry, Mass, Electrospray IonizationStructureTestingTherapeuticVDAC1 geneVeteransbasebeta-Lactam Resistancebeta-Lactamasebeta-Lactamscarbapenemasedrug resistant pathogenevaporationgenome analysisin vivoin vivo evaluationinhibitor/antagonistknockout genemembermolecular massmolecular modelingmortalitymulti-drug resistant pathogennovelnovel strategiesnovel therapeuticspathogenresistance mechanismsmall moleculesmall molecule inhibitorwhole genome
中文摘要
洋葱伯克霍尔德菌复合体(Bcc)是一组多药耐药(MDR)病原体
英文摘要
The prevalence of the Burkholderia cepacia complex (Bcc), a group of multidrug-resistant (MDR) pathogens, is
predicted to significantly increase in patients with pulmonary disorders (e.g., chronic obstructive pulmonary
disease (COPD), cystic fibrosis (CF), and asthma) by 2024. Moreover, MDR Bcc isolates that are resistant to
all currently recommended therapies are emerging. Unfortunately, the development of novel drugs against MDR
Bcc is lacking as is our understanding of these unique pathogens. In a retrospective study, a 35% mortality rate
in Veterans that acquired a Bcc infection was observed. Additionally, Veterans are shown to be
disproportionately affected by COPD, which puts them at an increased risk of acquiring infections by Bcc.
Indeed, the number of Bcc outbreaks around the world has doubled over the last decade. Identifying novel
strategies to overcome antibiotic resistance in these highly complex organisms that possess multiple
chromosomes is a significant unmet medical need and a substantial scientific challenge.
β-Lactams are one of the most prescribed and safest class of antibiotics and are often used to treat Bcc
infections. However, the production of β-lactamases is the most prevalent β-lactam-resistance mechanism in
members of the Bcc, which possess two chromosomally-encoded inducible β-lactamases, blapenA and blaampC.
As a result, the main objective of this application is to identify novel ways of overcoming β-lactam resistance in
Bcc. Building upon studies performed previously, mechanism-based approaches will be used to selectively
inhibit the following proteins in Bcc: 1. PenA, a versatile carbapenemase; 2. AmpC, a unique cephalosporinase;
3. Penicillin binding proteins (PBPs), the biological target of β-lactams and whose inhibition is linked to bla (β-
lactamase gene) expression; and 4. PenRA, the transcription regulator of bla genes.
To address these objectives, a mechanism-based approach will be used to restore susceptibility to MDR
Bcc by testing selected β-lactams alone and in combination with β-lactamase inhibitors, performing biochemical
and structural analysis of PenA and AmpC with the β-lactams and β-lactamase inhibitors, analyzing the genomes
of MDR Bcc, and determining the in vivo efficacy of selected combinations. Moreover, the link between PBP
inhibition and bla expression will be deciphered by identifying which β-lactams effect bla expression, measuring
the binding of β-lactams to PBPs, visualizing cells exposed to β-lactams via microscopy to reveal the impact of
β-lactams on cell morphology, and constructing pbp gene knockouts and assessing their phenotypes. In
addition, PenRA will be targeted for inhibition in B. multivorans by using crystallography to define the binding
pocket of the PenRA effector binding domain (EBD) and conducting a targeted small molecule inhibitor library
screen using an in-house high-throughput fluorescence assay.
The anticipated outcomes include identifying novel combinations to inhibit highly drug resistant Bcc by
determining which compounds target PenA, AmpC, and/or PBPs. Moreover, a greater understanding of the link
between PBP inhibition and bla expression will be gained, thus allowing clinicians to make better choices for
therapy. The interactions between native ligand of PenRA as well as a selected panel of small molecules which
resemble the native ligand will be determined, thus allowing for the identification of “lead” compounds to target
PenRA and inhibit bla expression. Based on the studies conducted herein, Veterans as well as other individuals
that acquire a Bcc infection will have alternative therapeutic options compared to what is currently available,
enabling clinicians to eradicate the organism and obtain clinical cure.
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Targeting Burkholderial β-lactamases: Structure, function, and regulation
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批准号:10412916
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项目类别:
-
资助金额:$0.0万
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财政年份:2015
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负责人:KRISZTINA Margaret PAPP-WALLACE
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依托单位:
Targeting Burkholderial β-lactamases: Structure, function, and regulation
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批准号:10045919
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项目类别:
-
资助金额:$0.0万
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财政年份:2015
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负责人:KRISZTINA Margaret PAPP-WALLACE
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依托单位:
海外基金