Cargando…

A Single Salt Bridge in VIM-20 Increases Protein Stability and Antibiotic Resistance under Low-Zinc Conditions

To understand the evolution of Verona integron-encoded metallo-β-lactamase (VIM) genes (bla(VIM)) and their clinical impact, microbiological, biochemical, and structural studies were conducted. Forty-five clinically derived VIM variants engineered in a uniform background and expressed in Escherichia...

Descripción completa

Detalles Bibliográficos
Autores principales: Cheng, Zishuo, Shurina, Ben A., Bethel, Christopher R., Thomas, Pei W., Marshall, Steven H., Thomas, Caitlyn A., Yang, Kundi, Kimble, Robert L., Montgomery, Jonathan S., Orischak, Matthew G., Miller, Callie M., Tennenbaum, Jordan L., Nix, Jay C., Tierney, David L., Fast, Walter, Bonomo, Robert A., Page, Richard C., Crowder, Michael W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6867895/
https://www.ncbi.nlm.nih.gov/pubmed/31744917
http://dx.doi.org/10.1128/mBio.02412-19
_version_ 1783472152067964928
author Cheng, Zishuo
Shurina, Ben A.
Bethel, Christopher R.
Thomas, Pei W.
Marshall, Steven H.
Thomas, Caitlyn A.
Yang, Kundi
Kimble, Robert L.
Montgomery, Jonathan S.
Orischak, Matthew G.
Miller, Callie M.
Tennenbaum, Jordan L.
Nix, Jay C.
Tierney, David L.
Fast, Walter
Bonomo, Robert A.
Page, Richard C.
Crowder, Michael W.
author_facet Cheng, Zishuo
Shurina, Ben A.
Bethel, Christopher R.
Thomas, Pei W.
Marshall, Steven H.
Thomas, Caitlyn A.
Yang, Kundi
Kimble, Robert L.
Montgomery, Jonathan S.
Orischak, Matthew G.
Miller, Callie M.
Tennenbaum, Jordan L.
Nix, Jay C.
Tierney, David L.
Fast, Walter
Bonomo, Robert A.
Page, Richard C.
Crowder, Michael W.
author_sort Cheng, Zishuo
collection PubMed
description To understand the evolution of Verona integron-encoded metallo-β-lactamase (VIM) genes (bla(VIM)) and their clinical impact, microbiological, biochemical, and structural studies were conducted. Forty-five clinically derived VIM variants engineered in a uniform background and expressed in Escherichia coli afforded increased resistance toward all tested antibiotics; the variants belonging to the VIM-1-like and VIM-4-like families exhibited higher MICs toward five out of six antibiotics than did variants belonging to the widely distributed and clinically important VIM-2-like family. Generally, maximal MIC increases were observed when cephalothin and imipenem were tested. Additionally, MIC determinations under conditions with low zinc availability suggested that some VIM variants are also evolving to overcome zinc deprivation. The most profound increase in resistance was observed in VIM-2-like variants (e.g., VIM-20 H229R) at low zinc availability. Biochemical analyses reveal that VIM-2 and VIM-20 exhibited similar metal binding properties and steady-state kinetic parameters under the conditions tested. Crystal structures of VIM-20 in the reduced and oxidized forms at 1.25 Å and 1.37 Å resolution, respectively, show that Arg229 forms an additional salt bridge with Glu171. Differential scanning fluorimetry of purified proteins and immunoblots of periplasmic extracts revealed that this difference increases thermostability and resistance to proteolytic degradation when zinc availability is low. Therefore, zinc scarcity appears to be a selective pressure driving the evolution of multiple metallo-β-lactamase families, although compensating mutations use different mechanisms to enhance resistance.
format Online
Article
Text
id pubmed-6867895
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-68678952019-12-03 A Single Salt Bridge in VIM-20 Increases Protein Stability and Antibiotic Resistance under Low-Zinc Conditions Cheng, Zishuo Shurina, Ben A. Bethel, Christopher R. Thomas, Pei W. Marshall, Steven H. Thomas, Caitlyn A. Yang, Kundi Kimble, Robert L. Montgomery, Jonathan S. Orischak, Matthew G. Miller, Callie M. Tennenbaum, Jordan L. Nix, Jay C. Tierney, David L. Fast, Walter Bonomo, Robert A. Page, Richard C. Crowder, Michael W. mBio Research Article To understand the evolution of Verona integron-encoded metallo-β-lactamase (VIM) genes (bla(VIM)) and their clinical impact, microbiological, biochemical, and structural studies were conducted. Forty-five clinically derived VIM variants engineered in a uniform background and expressed in Escherichia coli afforded increased resistance toward all tested antibiotics; the variants belonging to the VIM-1-like and VIM-4-like families exhibited higher MICs toward five out of six antibiotics than did variants belonging to the widely distributed and clinically important VIM-2-like family. Generally, maximal MIC increases were observed when cephalothin and imipenem were tested. Additionally, MIC determinations under conditions with low zinc availability suggested that some VIM variants are also evolving to overcome zinc deprivation. The most profound increase in resistance was observed in VIM-2-like variants (e.g., VIM-20 H229R) at low zinc availability. Biochemical analyses reveal that VIM-2 and VIM-20 exhibited similar metal binding properties and steady-state kinetic parameters under the conditions tested. Crystal structures of VIM-20 in the reduced and oxidized forms at 1.25 Å and 1.37 Å resolution, respectively, show that Arg229 forms an additional salt bridge with Glu171. Differential scanning fluorimetry of purified proteins and immunoblots of periplasmic extracts revealed that this difference increases thermostability and resistance to proteolytic degradation when zinc availability is low. Therefore, zinc scarcity appears to be a selective pressure driving the evolution of multiple metallo-β-lactamase families, although compensating mutations use different mechanisms to enhance resistance. American Society for Microbiology 2019-11-19 /pmc/articles/PMC6867895/ /pubmed/31744917 http://dx.doi.org/10.1128/mBio.02412-19 Text en https://doi.org/10.1128/AuthorWarrantyLicense.v1 This is a work of the U.S. Government and is not subject to copyright protection in the United States. Foreign copyrights may apply.
spellingShingle Research Article
Cheng, Zishuo
Shurina, Ben A.
Bethel, Christopher R.
Thomas, Pei W.
Marshall, Steven H.
Thomas, Caitlyn A.
Yang, Kundi
Kimble, Robert L.
Montgomery, Jonathan S.
Orischak, Matthew G.
Miller, Callie M.
Tennenbaum, Jordan L.
Nix, Jay C.
Tierney, David L.
Fast, Walter
Bonomo, Robert A.
Page, Richard C.
Crowder, Michael W.
A Single Salt Bridge in VIM-20 Increases Protein Stability and Antibiotic Resistance under Low-Zinc Conditions
title A Single Salt Bridge in VIM-20 Increases Protein Stability and Antibiotic Resistance under Low-Zinc Conditions
title_full A Single Salt Bridge in VIM-20 Increases Protein Stability and Antibiotic Resistance under Low-Zinc Conditions
title_fullStr A Single Salt Bridge in VIM-20 Increases Protein Stability and Antibiotic Resistance under Low-Zinc Conditions
title_full_unstemmed A Single Salt Bridge in VIM-20 Increases Protein Stability and Antibiotic Resistance under Low-Zinc Conditions
title_short A Single Salt Bridge in VIM-20 Increases Protein Stability and Antibiotic Resistance under Low-Zinc Conditions
title_sort single salt bridge in vim-20 increases protein stability and antibiotic resistance under low-zinc conditions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6867895/
https://www.ncbi.nlm.nih.gov/pubmed/31744917
http://dx.doi.org/10.1128/mBio.02412-19
work_keys_str_mv AT chengzishuo asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT shurinabena asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT bethelchristopherr asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT thomaspeiw asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT marshallstevenh asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT thomascaitlyna asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT yangkundi asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT kimblerobertl asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT montgomeryjonathans asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT orischakmatthewg asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT millercalliem asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT tennenbaumjordanl asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT nixjayc asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT tierneydavidl asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT fastwalter asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT bonomoroberta asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT pagerichardc asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT crowdermichaelw asinglesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT chengzishuo singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT shurinabena singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT bethelchristopherr singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT thomaspeiw singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT marshallstevenh singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT thomascaitlyna singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT yangkundi singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT kimblerobertl singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT montgomeryjonathans singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT orischakmatthewg singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT millercalliem singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT tennenbaumjordanl singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT nixjayc singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT tierneydavidl singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT fastwalter singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT bonomoroberta singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT pagerichardc singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions
AT crowdermichaelw singlesaltbridgeinvim20increasesproteinstabilityandantibioticresistanceunderlowzincconditions