Thermodynamic Analysis of Denaturant-Induced Unfolding of HodC69S Protein Supports a Three-State Mechanism

Kristian Boehm, Jessica Guddorf, Alexander Albers§, Tadashi Kamiyama, Susanne Fetzner§ and H.-J. Hinz*
Institut fr Physikalische Chemie, Westflische Wilhelms-Universitt Mnster, Corrensstrasse 30, 48149 Mnster, Germany, Institut fr Molekulare Mikrobiologie and Biotechnologie, Westflische Wilhelms-Universitt Mnster, Corrensstrasse 3, 48149 Mnster, Germany, and Department of Chemistry, Kinki University, 3-4-1 Kowakae, Higashi-Osaka, Osaka, Japan
Biochemistry, 2008, 47 (27), pp 7116–7126
DOI: 10.1021/bi800554v
Publication Date (Web): June 13, 2008
Copyright © 2008 American Chemical Society

Institut fr Physikalische Chemie, Westflische Wilhelms-Universitt Mnster.

,
§

Institut fr Molekulare Mikrobiologie and Biotechnologie, Westflische Wilhelms-Universitt Mnster.

,

Department of Chemistry, Kinki University.

,
* To whom correspondence should be adressed. E-mail: hinz@uni-muenster.de. Telephone: 0049 251 8323427. Fax: 0049 251 8329163.

Abstract

Abstract Image

Thermodynamic stability parameters and the equilibrium unfolding mechanism of His6HodC69S, a mutant of 1H-3-hydroxy-4-oxoquinaldine 2,4-dioxygenase (Hod) having a Cys to Ser exchange at position 69 and an N-terminal hexahistidine tag (His6HodC69S), have been derived from isothermal unfolding studies using guanidine hydrochloride (GdnHCl) or urea as denaturants. The conformational changes were monitored by following changes in circular dichroism (CD), fluorescence, and dynamic light scattering (DLS), and the resulting transition curves were analyzed on the basis of a sequential three-state model N = I = D. The structural changes have been correlated to catalytic activity, and the contribution to stability of the disulfide bond between residues C37 and C184 in the native protein has been established. A prominent result of the present study is the finding that, independent of the method used for denaturing the protein, the unfolding mechanism always comprises three states which can be characterized by, within error limits, identical sets of thermodynamic parameters. Apparent deviations from three-state unfolding can be rationalized by the inability of a spectroscopic probe to discriminate clearly between native, intermediate, and unfolded ensembles. This was the case for the CD-monitored urea unfolding curve.

Tools

History

  • Published In Issue July 08, 2008
  • Article ASAPJune 13, 2008
  • Received: March 31, 2008
    Revised: May 07, 2008

Recommend & Share

Related Content

Other ACS content by these authors: