Calorimetric and spectroscopic investigations of the thermal denaturation of wild type nitrite reductase

  • A Stirpe
  • , R Guzzi*
  • , H Wijma
  • , MP Verbeet
  • , GW Canters
  • , L Sportelli
  • *Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

19 Citations (Scopus)

Abstract

Nitrite reductase (NiR) is a multicopper protein, with a trimeric structure containing two types of copper site: type I is present in each subunit whereas type 2 is localized at the subunits interface. The paper reports on the thermal behaviour of wild type NiR from Alcaligenes faecalis S-6. The temperature-induced changes of the copper centres are characterized by optical spectroscopy and electron paramagnetic resonance spectroscopy, and by establishing the thermal stability by differential scanning calorimetry. The calorimetric profile of the enzyme shows a single endothermic peak with maximum heat absorption at T(m)approximate to 100 degrees C, revealing an exceptional thermal stability. The thermal transition is irreversible and the scan rate dependence of the calorimetric trace indicates that the denaturation of NiR is kinetically controlled. The divergence of the activation energy values determined by different methods is used as a criterion for the inapplicability of the one-step irreversible model. The best fit of the DSC profiles is obtained when the classical Lumry-Eyring model, N double left right arrow U double right arrow F, is considered. The simulation results indicate that the irreversible step prevails on the reversible one. Moreover, it is found that the conformational changes within the type-1 copper environments precede the denaturation of the whole protein. No evidence of protein dissociation within the temperature range investigated was observed. (c) 2005 Elsevier B.V All rights reserved.

Original languageEnglish
Pages (from-to)47-55
Number of pages9
JournalBiochimica et biophysica acta-Proteins and proteomics
Volume1752
Issue number1
DOIs
Publication statusPublished - 31-Aug-2005

Keywords

  • nitrite reductase
  • thermal denaturation
  • activation energy
  • Lumry-Eyring model
  • DIFFERENTIAL SCANNING CALORIMETRY
  • IRREVERSIBLE PROTEIN DENATURATION
  • ALCALIGENES-FAECALIS S-6
  • ASCORBATE OXIDASE
  • COPPER SITE
  • DISULFIDE-BRIDGE
  • STRAIN S-6
  • STABILITY
  • THERMODYNAMICS
  • AZURIN

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