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Structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase

BACKGROUND: β-lactamase conjugated with environment-sensitive fluorescein molecule to residue 166 on the Ω-loop near its catalytic site is a highly effective biosensor for β-lactam antibiotics. Yet the molecular mechanism of such fluorescence-based biosensing is not well understood. RESULTS: Here we...

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Autores principales: Wong, Wai-Ting, Au, Ho-Wah, Yap, Hong-Kin, Leung, Yun-Chung, Wong, Kwok-Yin, Zhao, Yanxiang
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3076226/
https://www.ncbi.nlm.nih.gov/pubmed/21443768
http://dx.doi.org/10.1186/1472-6807-11-15
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author Wong, Wai-Ting
Au, Ho-Wah
Yap, Hong-Kin
Leung, Yun-Chung
Wong, Kwok-Yin
Zhao, Yanxiang
author_facet Wong, Wai-Ting
Au, Ho-Wah
Yap, Hong-Kin
Leung, Yun-Chung
Wong, Kwok-Yin
Zhao, Yanxiang
author_sort Wong, Wai-Ting
collection PubMed
description BACKGROUND: β-lactamase conjugated with environment-sensitive fluorescein molecule to residue 166 on the Ω-loop near its catalytic site is a highly effective biosensor for β-lactam antibiotics. Yet the molecular mechanism of such fluorescence-based biosensing is not well understood. RESULTS: Here we report the crystal structure of a Class A β-lactamase PenP from Bacillus licheniformis 749/C with fluorescein conjugated at residue 166 after E166C mutation, both in apo form (PenP-E166Cf) and in covalent complex form with cefotaxime (PenP-E166Cf-cefotaxime), to illustrate its biosensing mechanism. In the apo structure the fluorescein molecule partially occupies the antibiotic binding site and is highly dynamic. In the PenP-E166Cf-cefatoxime complex structure the binding and subsequent acylation of cefotaxime to PenP displaces fluorescein from its original location to avoid steric clash. Such displacement causes the well-folded Ω-loop to become fully flexible and the conjugated fluorescein molecule to relocate to a more solvent exposed environment, hence enhancing its fluorescence emission. Furthermore, the fully flexible Ω-loop enables the narrow-spectrum PenP enzyme to bind cefotaxime in a mode that resembles the extended-spectrum β-lactamase. CONCLUSIONS: Our structural studies indicate the biosensing mechanism of a fluorescein-labelled β-lactamase. Such findings confirm our previous proposal based on molecular modelling and provide useful information for the rational design of β-lactamase-based biosensor to detect the wide spectrum of β-lactam antibiotics. The observation of increased Ω-loop flexibility upon conjugation of fluorophore may have the potential to serve as a screening tool for novel β-lactamase inhibitors that target the Ω-loop and not the active site.
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spelling pubmed-30762262011-04-14 Structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase Wong, Wai-Ting Au, Ho-Wah Yap, Hong-Kin Leung, Yun-Chung Wong, Kwok-Yin Zhao, Yanxiang BMC Struct Biol Research Article BACKGROUND: β-lactamase conjugated with environment-sensitive fluorescein molecule to residue 166 on the Ω-loop near its catalytic site is a highly effective biosensor for β-lactam antibiotics. Yet the molecular mechanism of such fluorescence-based biosensing is not well understood. RESULTS: Here we report the crystal structure of a Class A β-lactamase PenP from Bacillus licheniformis 749/C with fluorescein conjugated at residue 166 after E166C mutation, both in apo form (PenP-E166Cf) and in covalent complex form with cefotaxime (PenP-E166Cf-cefotaxime), to illustrate its biosensing mechanism. In the apo structure the fluorescein molecule partially occupies the antibiotic binding site and is highly dynamic. In the PenP-E166Cf-cefatoxime complex structure the binding and subsequent acylation of cefotaxime to PenP displaces fluorescein from its original location to avoid steric clash. Such displacement causes the well-folded Ω-loop to become fully flexible and the conjugated fluorescein molecule to relocate to a more solvent exposed environment, hence enhancing its fluorescence emission. Furthermore, the fully flexible Ω-loop enables the narrow-spectrum PenP enzyme to bind cefotaxime in a mode that resembles the extended-spectrum β-lactamase. CONCLUSIONS: Our structural studies indicate the biosensing mechanism of a fluorescein-labelled β-lactamase. Such findings confirm our previous proposal based on molecular modelling and provide useful information for the rational design of β-lactamase-based biosensor to detect the wide spectrum of β-lactam antibiotics. The observation of increased Ω-loop flexibility upon conjugation of fluorophore may have the potential to serve as a screening tool for novel β-lactamase inhibitors that target the Ω-loop and not the active site. BioMed Central 2011-03-28 /pmc/articles/PMC3076226/ /pubmed/21443768 http://dx.doi.org/10.1186/1472-6807-11-15 Text en Copyright ©2011 Wong et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Wong, Wai-Ting
Au, Ho-Wah
Yap, Hong-Kin
Leung, Yun-Chung
Wong, Kwok-Yin
Zhao, Yanxiang
Structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase
title Structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase
title_full Structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase
title_fullStr Structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase
title_full_unstemmed Structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase
title_short Structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase
title_sort structural studies of the mechanism for biosensing antibiotics in a fluorescein-labeled β-lactamase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3076226/
https://www.ncbi.nlm.nih.gov/pubmed/21443768
http://dx.doi.org/10.1186/1472-6807-11-15
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