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Twelve Positions in a beta-Lactamase That Can Expand Its Substrate Spectrum with a Single Amino Acid Substitution

Authors
Yi, HyojeongCho, Kwang-HwiCho, Yun SungKim, KaranNierman, William C.Kim, Heenam Stanley
Issue Date
22-May-2012
Publisher
PUBLIC LIBRARY SCIENCE
Citation
PLOS ONE, v.7, no.5
Journal Title
PLOS ONE
Volume
7
Number
5
URI
http://scholarworks.bwise.kr/ssu/handle/2018.sw.ssu/12427
DOI
10.1371/journal.pone.0037585
ISSN
1932-6203
Abstract
The continuous evolution of beta-lactamases resulting in bacterial resistance to beta-lactam antibiotics is a major concern in public health, and yet the underlying molecular basis or the pattern of such evolution is largely unknown. We investigated the mechanics of the substrate fspectrum expansion of the class A beta-lactamase using PenA of Burkholderia thailandensis as a model. By analyzing 516 mutated enzymes that acquired the ceftazidime-hydrolyzing activity, we found twelve positions with single amino acid substitutions (altogether twenty-nine different substitutions), co-localized at the active-site pocket area. The ceftazidime MIC (minimum inhibitory concentration) levels and the relative frequency in the occurrence of substitutions did not correlate well with each other, and the latter appeared be largely influenced by the intrinsic mutational biases present in bacteria. Simulation studies suggested that all substitutions caused a congruent effect, expanding the space in a conserved structure called the omega loop, which in turn increased flexibility at the active site. A second phase of selection, in which the mutants were placed under increased antibiotic pressure, did not result in a second mutation in the coding region, but a mutation that increased gene expression arose in the promoter. This result suggests that the twelve amino acid positions and their specific substitutions in PenA may represent a comprehensive repertoire of the enzyme's adaptability to a new substrate. These mapped substitutions represent a comprehensive set of general mechanical paths to substrate spectrum expansion in class A beta-lactamases that all share a functional evolutionary mechanism using common conserved residues.
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College of Natural Sciences (Department of Bioinformatics & Life Science)
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