ArmR: a novel drug target and mediator of antibiotic resistance
ArmR: a novel drug target and mediator of antibiotic resistance
批准号:
8842087
负责人:
DAVID S WEISS
金额:
$52.33万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-05-01 至 2017-04-30
关键词:
Acinetobacter baumanniiAntibiotic ResistanceAntibiotic TherapyAntibioticsAntimicrobial ResistanceBacteriaBiologyCessation of lifeChargeChemicalsClinicColistinDeacetylaseDevelopmentDrug TargetingDrug resistanceExtreme drug resistant tuberculosisFrancisella tularensisGenerationsGenesGeneticGram-Negative BacteriaHealth Care CostsHealthcareHost DefenseInfectionLeadLipid ALipopolysaccharidesMediator of activation proteinMembraneModificationMolecularMuramidaseMutationNamesNosocomial InfectionsPathogenesisPenicillin ResistancePharmaceutical PreparationsPlayPolymyxin BPolymyxin ResistancePolymyxinsProteinsResearchResistanceRoleSerumSurfaceSynthesis ChemistryVirulenceWorkantimicrobialantimicrobial peptidebeta-Lactamasebiodefensecombatdrug resistant bacteriahigh throughput screeningin vivoinhibitor/antagonistinsightmortalitynovelnovel therapeuticspathogenresistance mechanismscreeningsmall moleculevirtual
中文摘要
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英文摘要
Drug resistant Gram-negative bacterial pathogens are an increasing cause of hospital-acquired
infections, mortality, and a huge burden on healthcare costs. Acinetobacter baumannii is a
major cause of such infections and strains have recently emerged which are resistant even to
the last line of defense drugs, polymyxin B and colistin (polymyxin E), which target and disrupt
the lipid A portion of lipopolysaccharide (LPS) in the outer membrane. Understanding the
mechanism of this resistance at the molecular level would facilitate the development of novel
therapeutics aimed at reversing resistance, in much the same way that beta-lactamase
inhibitors can counteract penicillin resistance. To this end, we have recently identified a novel
protein that we have named ArmR (or Armor - Antimicrobial Resistance by Modification of lipid
A surface chaRge) that is widely conserved and which we show is required for resistance to
polymyxins in A. baumannii as well as other Gram-negative bacteria. ArmR is required for a
lipid A modification that leads to the increase of surface charge on the bacterial membrane,
acting to repel the positively charged polymyxins as well as positively charged host-derived
antimicrobial peptides. We hypothesize that inhibition of ArmR would reverse the resistance to
polymyxins, preserving their utility in the clinic, and also sensitize the bacteria to innate host
defenses.
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海外基金