DISRUPTING BACTERIAL DEFENSES: POTENTIATION OF CONVENTIONAL THERAPEUTICS AND DEVELOPMENT OF NEXT-GENERATION DRUG TARGETS

dc.contributor.advisorWest, Ann
dc.contributor.authorBest, William
dc.contributor.committeeMemberBourne, Christina
dc.contributor.committeeMemberDe Leόn, Kara
dc.contributor.committeeMemberZgurskaya, Elena
dc.contributor.committeeMemberRajan, Rakhi
dc.date.accessioned2025-08-04T16:04:41Z
dc.date.embargoExpiration2028-08-04 00:00:00
dc.date.issued2025
dc.date.proquestAvailable01/01/2025
dc.date.updated2025-08-04T16:04:41Z
dc.description.abstractThe widespread use of antibiotics and other antimicrobial compounds has been a boon to human health and saved countless lives over the last century. This has coincided with the emergence of antimicrobial resistance (AMR) within populations of these microbes, which is increasingly making the treatment of the infections they cause more difficult. In some cases, pathogenic strains have emerged which are resistant to all antibiotics available, meaning the infections are untreatable. The increasing occurrence of AMR within pathogens necessitates the development of new therapies to combat this; alternatively, new approaches can be developed which make use of current therapeutic agents, in turn enabling us to use otherwise ineffective treatment options.One such strategy is the use of a potentiator molecule, which can restore susceptibility to an antibiotic in otherwise resistant organisms. The Rice lab proposes the use of branched polyethylenimine (BPEI), which can permeabilize bacterial membranes and restore susceptibility to a wide variety of antibiotics in previously resistant Gram-positive and -negative bacteria. In Chapter Two, we explore the consequences of bacterial resistance to BPEI in the pathogen Pseudomonas aeruginosa, which results in increased susceptibility to aminoglycoside antibiotics in the BPEI-resistant strains. We also report on the development of a collagen sponge in Chapter Three for the delivery of BPEI against biofilms of P. aeruginosa. Another strategy to combat AMR is to develop new targets for antimicrobial agents. Ideally, these novel targets will be widely present within bacteria but not our own cells. In the Rajan lab, we used a bioinformatic approach for protein motif analysis to identify motifs in the Cas9 sequence which are only present in pathogenic bacteria. This presents a new avenue of research to begin identifying targets for new antimicrobial agents.
dc.identifier.urihttps://shareok.org//handle/11244/341601
dc.language.isoen
dc.publisherUniversity of Oklahoma – Graduate College
dc.subjectBiochemistry
dc.subjectMicrobiology
dc.subjectBiochemistry
dc.subjectBPEI
dc.subjectCas9
dc.subjectMicrobiology
dc.subjectProtein Motif
dc.subjectStructural Biology
dc.thesis.degreeD.Phil.
dc.titleDISRUPTING BACTERIAL DEFENSES: POTENTIATION OF CONVENTIONAL THERAPEUTICS AND DEVELOPMENT OF NEXT-GENERATION DRUG TARGETS
ou.groupChemistry and Biochemistry: Arts & Sciences

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