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Thermal stability of matrix protein from Newcastle disease virus

  • Irene Sánchez Morán
  • , Sara Cuadrado-Castano
  • , Isabel Muñoz Barroso
  • , Eduard Ya Kostetsky
  • , Galina Zhadan
  • , Javier Gómez
  • , Valery L. Shnyrov
  • , Enrique Villar

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

The thermal stability of the matrix protein (M protein) of Newcastle disease virus (NDV) has been investigated using high-sensitivity differential scanning calorimetry (DSC) at pH 7.4. The thermal folding/unfolding of M protein at this pH value is a reversible process involving a highly cooperative transition between folded and unfolded monomers with a transition temperature (Tm) of 63°C, an unfolding enthalpy, δH(Tm), of 340kcalmol-1, and the difference in heat capacity between the native and denatured states of the protein, δCp, of 5.1kcalK-1mol-1. The heat capacity of the native state of the protein is in good agreement with the values calculated using a structure-based parameterization, whereas the calculated values for the hypothetical fully-unfolded state of the protein is higher than those determined experimentally. This difference between the heat capacity of denatured M protein and the heat capacity expected for an unstructured polypeptide of the same sequence, together with the data derived from the heat-induced changes in the steady-state fluorescence of the protein, indicates that the polypeptide chain maintains a significant amount of residual structure after thermal denaturation.

Original languageEnglish
Pages (from-to)390-395
Number of pages6
JournalInternational Journal of Biological Macromolecules
Volume61
DOIs
StatePublished - Oct 2013

Keywords

  • Newcastle disease virus matrix protein
  • Structural-based statistical thermodynamic analysis
  • Thermal stability

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