Site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains

β-lactam antibiotics are a crucial class of drugs widely used to target bacterial infections. However, the frequent use and misuse of β-lactam antibiotics has resulted in the emergence of antibiotic resistance – a severe threat to global health – which is present dominantly through the production of...

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Main Author: Kock, Si Min
Other Authors: Xing Bengang
Format: Theses and Dissertations
Language:English
Published: 2016
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Online Access:http://hdl.handle.net/10356/69361
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-693612023-02-28T23:47:20Z Site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains Kock, Si Min Xing Bengang School of Physical and Mathematical Sciences DRNTU::Science::Chemistry::Biochemistry β-lactam antibiotics are a crucial class of drugs widely used to target bacterial infections. However, the frequent use and misuse of β-lactam antibiotics has resulted in the emergence of antibiotic resistance – a severe threat to global health – which is present dominantly through the production of β-lactamase. In response, our group sought to develop optical imaging probes that would enable the rapid and selective intracellular identification and imaging of β-lactamase activity in real-time. We hope the optical imaging probes would serve as a tool for diagnostic microbiology – to screen and identify resistant bacterial strains – to administer controlled antibiotic therapy and to enable more in-depth research in antibiotic resistance mechanisms. In our study, we designed two optical imaging probes: (1) Upconversion nanoparticles (UCNP)-based optical probe (2) Metabolic optical probe for covalent labeling of the bacterial peptidoglycan. The UCNP-based optical probe was observed to have achieved a 150-fold fluorescence enhancement when cleaved with a Class A β-lactamase. The UCNP-based optical probe has also displayed selectivity for resistant bacterial strains and has viable in vitro activity in preliminary mammalian cell fluorescence imaging studies conducted. The metabolic optical imaging probe was observed to have achieved a 200-fold fluorescence enhancement when cleaved with a Class C β-lactamase. The metabolic optical probe has also shown specificity for resistant bacterial strains, displaying greater selectivity for Class C β-lactamase-producing bacterial strains over Class A β-lactamase-producing bacterial strains in fluorescence bacterial imaging studies conducted. Master of Science 2016-12-19T07:36:39Z 2016-12-19T07:36:39Z 2016 Thesis http://hdl.handle.net/10356/69361 en application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Chemistry::Biochemistry
spellingShingle DRNTU::Science::Chemistry::Biochemistry
Kock, Si Min
Site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains
description β-lactam antibiotics are a crucial class of drugs widely used to target bacterial infections. However, the frequent use and misuse of β-lactam antibiotics has resulted in the emergence of antibiotic resistance – a severe threat to global health – which is present dominantly through the production of β-lactamase. In response, our group sought to develop optical imaging probes that would enable the rapid and selective intracellular identification and imaging of β-lactamase activity in real-time. We hope the optical imaging probes would serve as a tool for diagnostic microbiology – to screen and identify resistant bacterial strains – to administer controlled antibiotic therapy and to enable more in-depth research in antibiotic resistance mechanisms. In our study, we designed two optical imaging probes: (1) Upconversion nanoparticles (UCNP)-based optical probe (2) Metabolic optical probe for covalent labeling of the bacterial peptidoglycan. The UCNP-based optical probe was observed to have achieved a 150-fold fluorescence enhancement when cleaved with a Class A β-lactamase. The UCNP-based optical probe has also displayed selectivity for resistant bacterial strains and has viable in vitro activity in preliminary mammalian cell fluorescence imaging studies conducted. The metabolic optical imaging probe was observed to have achieved a 200-fold fluorescence enhancement when cleaved with a Class C β-lactamase. The metabolic optical probe has also shown specificity for resistant bacterial strains, displaying greater selectivity for Class C β-lactamase-producing bacterial strains over Class A β-lactamase-producing bacterial strains in fluorescence bacterial imaging studies conducted.
author2 Xing Bengang
author_facet Xing Bengang
Kock, Si Min
format Theses and Dissertations
author Kock, Si Min
author_sort Kock, Si Min
title Site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains
title_short Site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains
title_full Site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains
title_fullStr Site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains
title_full_unstemmed Site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains
title_sort site-specific localized labeling for efficient bio-sensing of drug resistant bacterial strains
publishDate 2016
url http://hdl.handle.net/10356/69361
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