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Interactions of Kid–Kis toxin–antitoxin complexes with the parD operator-promoter region of plasmid R1 are piloted by the Kis antitoxin and tuned by the stoichiometry of Kid–Kis oligomers

The parD operon of Escherichia coli plasmid R1 encodes a toxin–antitoxin system, which is involved in plasmid stabilization. The toxin Kid inhibits cell growth by RNA degradation and its action is neutralized by the formation of a tight complex with the antitoxin Kis. A fascinating but poorly unders...

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Autores principales: Monti, Maria C., Hernández-Arriaga, Ana M., Kamphuis, Monique B., López-Villarejo, Juan, Heck, Albert J. R., Boelens, Rolf, Díaz-Orejas, Ramón, van den Heuvel, Robert H. H.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1865072/
https://www.ncbi.nlm.nih.gov/pubmed/17317682
http://dx.doi.org/10.1093/nar/gkm073
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author Monti, Maria C.
Hernández-Arriaga, Ana M.
Kamphuis, Monique B.
López-Villarejo, Juan
Heck, Albert J. R.
Boelens, Rolf
Díaz-Orejas, Ramón
van den Heuvel, Robert H. H.
author_facet Monti, Maria C.
Hernández-Arriaga, Ana M.
Kamphuis, Monique B.
López-Villarejo, Juan
Heck, Albert J. R.
Boelens, Rolf
Díaz-Orejas, Ramón
van den Heuvel, Robert H. H.
author_sort Monti, Maria C.
collection PubMed
description The parD operon of Escherichia coli plasmid R1 encodes a toxin–antitoxin system, which is involved in plasmid stabilization. The toxin Kid inhibits cell growth by RNA degradation and its action is neutralized by the formation of a tight complex with the antitoxin Kis. A fascinating but poorly understood aspect of the kid–kis system is its autoregulation at the transcriptional level. Using macromolecular (tandem) mass spectrometry and DNA binding assays, we here demonstrate that Kis pilots the interaction of the Kid–Kis complex in the parD regulatory region and that two discrete Kis-binding regions are present on parD. The data clearly show that only when the Kis concentration equals or exceeds the Kid concentration a strong cooperative effect exists between strong DNA binding and Kid(2)–Kis(2)–Kid(2)–Kis(2) complex formation. We propose a model in which transcriptional repression of the parD operon is tuned by the relative molar ratio of the antitoxin and toxin proteins in solution. When the concentration of the toxin exceeds that of the antitoxin tight Kid(2)–Kis(2)–Kid(2) complexes are formed, which only neutralize the lethal activity of Kid. Upon increasing the Kis concentration, (Kid(2)–Kis(2))(n) complexes repress the kid–kis operon.
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spelling pubmed-18650722007-05-22 Interactions of Kid–Kis toxin–antitoxin complexes with the parD operator-promoter region of plasmid R1 are piloted by the Kis antitoxin and tuned by the stoichiometry of Kid–Kis oligomers Monti, Maria C. Hernández-Arriaga, Ana M. Kamphuis, Monique B. López-Villarejo, Juan Heck, Albert J. R. Boelens, Rolf Díaz-Orejas, Ramón van den Heuvel, Robert H. H. Nucleic Acids Res Structural Biology The parD operon of Escherichia coli plasmid R1 encodes a toxin–antitoxin system, which is involved in plasmid stabilization. The toxin Kid inhibits cell growth by RNA degradation and its action is neutralized by the formation of a tight complex with the antitoxin Kis. A fascinating but poorly understood aspect of the kid–kis system is its autoregulation at the transcriptional level. Using macromolecular (tandem) mass spectrometry and DNA binding assays, we here demonstrate that Kis pilots the interaction of the Kid–Kis complex in the parD regulatory region and that two discrete Kis-binding regions are present on parD. The data clearly show that only when the Kis concentration equals or exceeds the Kid concentration a strong cooperative effect exists between strong DNA binding and Kid(2)–Kis(2)–Kid(2)–Kis(2) complex formation. We propose a model in which transcriptional repression of the parD operon is tuned by the relative molar ratio of the antitoxin and toxin proteins in solution. When the concentration of the toxin exceeds that of the antitoxin tight Kid(2)–Kis(2)–Kid(2) complexes are formed, which only neutralize the lethal activity of Kid. Upon increasing the Kis concentration, (Kid(2)–Kis(2))(n) complexes repress the kid–kis operon. Oxford University Press 2007-03 2007-02-21 /pmc/articles/PMC1865072/ /pubmed/17317682 http://dx.doi.org/10.1093/nar/gkm073 Text en © 2007 The Author(s) This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.0/uk/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Structural Biology
Monti, Maria C.
Hernández-Arriaga, Ana M.
Kamphuis, Monique B.
López-Villarejo, Juan
Heck, Albert J. R.
Boelens, Rolf
Díaz-Orejas, Ramón
van den Heuvel, Robert H. H.
Interactions of Kid–Kis toxin–antitoxin complexes with the parD operator-promoter region of plasmid R1 are piloted by the Kis antitoxin and tuned by the stoichiometry of Kid–Kis oligomers
title Interactions of Kid–Kis toxin–antitoxin complexes with the parD operator-promoter region of plasmid R1 are piloted by the Kis antitoxin and tuned by the stoichiometry of Kid–Kis oligomers
title_full Interactions of Kid–Kis toxin–antitoxin complexes with the parD operator-promoter region of plasmid R1 are piloted by the Kis antitoxin and tuned by the stoichiometry of Kid–Kis oligomers
title_fullStr Interactions of Kid–Kis toxin–antitoxin complexes with the parD operator-promoter region of plasmid R1 are piloted by the Kis antitoxin and tuned by the stoichiometry of Kid–Kis oligomers
title_full_unstemmed Interactions of Kid–Kis toxin–antitoxin complexes with the parD operator-promoter region of plasmid R1 are piloted by the Kis antitoxin and tuned by the stoichiometry of Kid–Kis oligomers
title_short Interactions of Kid–Kis toxin–antitoxin complexes with the parD operator-promoter region of plasmid R1 are piloted by the Kis antitoxin and tuned by the stoichiometry of Kid–Kis oligomers
title_sort interactions of kid–kis toxin–antitoxin complexes with the pard operator-promoter region of plasmid r1 are piloted by the kis antitoxin and tuned by the stoichiometry of kid–kis oligomers
topic Structural Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1865072/
https://www.ncbi.nlm.nih.gov/pubmed/17317682
http://dx.doi.org/10.1093/nar/gkm073
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