Cargando…

Controlling the dynamics of the Nek2 leucine zipper by engineering of “kinetic” disulphide bonds

Nek2 is a dimeric serine/ threonine protein kinase that belongs to the family of NIMA-related kinases (Neks). Its N-terminal catalytic domain and its C-terminal regulatory region are bridged by a leucine zipper, which plays an important role in the activation of Nek2’s catalytic activity. Unusual co...

Descripción completa

Detalles Bibliográficos
Autores principales: Gutmans, Daniel S., Whittaker, Sara B-M, Asiani, Karishma, Atkinson, R. Andrew, Oregioni, Alain, Pfuhl, Mark
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6358272/
https://www.ncbi.nlm.nih.gov/pubmed/30707691
http://dx.doi.org/10.1371/journal.pone.0210352
_version_ 1783391972361240576
author Gutmans, Daniel S.
Whittaker, Sara B-M
Asiani, Karishma
Atkinson, R. Andrew
Oregioni, Alain
Pfuhl, Mark
author_facet Gutmans, Daniel S.
Whittaker, Sara B-M
Asiani, Karishma
Atkinson, R. Andrew
Oregioni, Alain
Pfuhl, Mark
author_sort Gutmans, Daniel S.
collection PubMed
description Nek2 is a dimeric serine/ threonine protein kinase that belongs to the family of NIMA-related kinases (Neks). Its N-terminal catalytic domain and its C-terminal regulatory region are bridged by a leucine zipper, which plays an important role in the activation of Nek2’s catalytic activity. Unusual conformational dynamics on the intermediary/slow timescale has thwarted all attempts so far to determine the structure of the Nek2 leucine zipper by means of X-ray crystallography and Nuclear Magnetic Resonance (NMR). Disulfide engineering, the strategic placement of non-native disulfide bonds into flexible regions flanking the coiled coil, was used to modulate the conformational exchange dynamics of this important dimerization domain. The resulting reduction in exchange rate leads to substantial improvements of important features in NMR spectra, such as line width, coherence transfer leakage and relaxation. These effects were comprehensively analyzed for the wild type protein, two single disulfide bond-bearing mutants and another double disulfide bonds-carrying mutant. Furthermore, exchange kinetics were measured across a wide temperature range, allowing for a detailed analysis of activation energy (ΔG(‡)) and maximal rate constant (k’(ex)). For one mutant carrying a disulfide bond at its C-terminus, a full backbone NMR assignment could be obtained for both conformers, demonstrating the benefits of the disulfide engineering. Our study demonstrates the first successful application of ‘kinetic’ disulfide bonds for the purpose of controlling the adverse effects of protein dynamics. Firstly, this provides a promising, robust platform for the full structural and functional investigation of the Nek2 leucine zipper in the future. Secondly, this work broadens the toolbox of protein engineering by disulfide bonds through the addition of a kinetic option in addition to the well-established thermodynamic uses of disulfide bonds.
format Online
Article
Text
id pubmed-6358272
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-63582722019-02-22 Controlling the dynamics of the Nek2 leucine zipper by engineering of “kinetic” disulphide bonds Gutmans, Daniel S. Whittaker, Sara B-M Asiani, Karishma Atkinson, R. Andrew Oregioni, Alain Pfuhl, Mark PLoS One Research Article Nek2 is a dimeric serine/ threonine protein kinase that belongs to the family of NIMA-related kinases (Neks). Its N-terminal catalytic domain and its C-terminal regulatory region are bridged by a leucine zipper, which plays an important role in the activation of Nek2’s catalytic activity. Unusual conformational dynamics on the intermediary/slow timescale has thwarted all attempts so far to determine the structure of the Nek2 leucine zipper by means of X-ray crystallography and Nuclear Magnetic Resonance (NMR). Disulfide engineering, the strategic placement of non-native disulfide bonds into flexible regions flanking the coiled coil, was used to modulate the conformational exchange dynamics of this important dimerization domain. The resulting reduction in exchange rate leads to substantial improvements of important features in NMR spectra, such as line width, coherence transfer leakage and relaxation. These effects were comprehensively analyzed for the wild type protein, two single disulfide bond-bearing mutants and another double disulfide bonds-carrying mutant. Furthermore, exchange kinetics were measured across a wide temperature range, allowing for a detailed analysis of activation energy (ΔG(‡)) and maximal rate constant (k’(ex)). For one mutant carrying a disulfide bond at its C-terminus, a full backbone NMR assignment could be obtained for both conformers, demonstrating the benefits of the disulfide engineering. Our study demonstrates the first successful application of ‘kinetic’ disulfide bonds for the purpose of controlling the adverse effects of protein dynamics. Firstly, this provides a promising, robust platform for the full structural and functional investigation of the Nek2 leucine zipper in the future. Secondly, this work broadens the toolbox of protein engineering by disulfide bonds through the addition of a kinetic option in addition to the well-established thermodynamic uses of disulfide bonds. Public Library of Science 2019-02-01 /pmc/articles/PMC6358272/ /pubmed/30707691 http://dx.doi.org/10.1371/journal.pone.0210352 Text en © 2019 Gutmans et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Gutmans, Daniel S.
Whittaker, Sara B-M
Asiani, Karishma
Atkinson, R. Andrew
Oregioni, Alain
Pfuhl, Mark
Controlling the dynamics of the Nek2 leucine zipper by engineering of “kinetic” disulphide bonds
title Controlling the dynamics of the Nek2 leucine zipper by engineering of “kinetic” disulphide bonds
title_full Controlling the dynamics of the Nek2 leucine zipper by engineering of “kinetic” disulphide bonds
title_fullStr Controlling the dynamics of the Nek2 leucine zipper by engineering of “kinetic” disulphide bonds
title_full_unstemmed Controlling the dynamics of the Nek2 leucine zipper by engineering of “kinetic” disulphide bonds
title_short Controlling the dynamics of the Nek2 leucine zipper by engineering of “kinetic” disulphide bonds
title_sort controlling the dynamics of the nek2 leucine zipper by engineering of “kinetic” disulphide bonds
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6358272/
https://www.ncbi.nlm.nih.gov/pubmed/30707691
http://dx.doi.org/10.1371/journal.pone.0210352
work_keys_str_mv AT gutmansdaniels controllingthedynamicsofthenek2leucinezipperbyengineeringofkineticdisulphidebonds
AT whittakersarabm controllingthedynamicsofthenek2leucinezipperbyengineeringofkineticdisulphidebonds
AT asianikarishma controllingthedynamicsofthenek2leucinezipperbyengineeringofkineticdisulphidebonds
AT atkinsonrandrew controllingthedynamicsofthenek2leucinezipperbyengineeringofkineticdisulphidebonds
AT oregionialain controllingthedynamicsofthenek2leucinezipperbyengineeringofkineticdisulphidebonds
AT pfuhlmark controllingthedynamicsofthenek2leucinezipperbyengineeringofkineticdisulphidebonds