Thermodynamic basis of the α-helix and DNA duplex
Autor: | Colyn Crane-Robinson, Anatoliy I. Dragan, Peter L. Privalov |
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Rok vydání: | 2021 |
Předmět: |
Hydrogen bonding
Protein Conformation alpha-Helical 0301 basic medicine Base pair Enthalpy Biophysics DNA double helix 03 medical and health sciences symbols.namesake Biophysics Letter 030102 biochemistry & molecular biology Van der Waals interactions Hydrogen bond Chemistry Water DNA General Medicine hydrogen bonding Gibbs free energy Folding (chemistry) Crystallography 030104 developmental biology stabilty Helix symbols Thermodynamics α-Helix van der Waals force Peptides Stability Entropy (order and disorder) |
Zdroj: | Dragan, A, Crane-Robinson, C & Privalov, P L 2021, ' Thermodynamic basis of the α-helix and DNA duplex ', European Biophysics Journal, vol. 50, no. 5, 252, pp. 787-792 . https://doi.org/10.1007/s00249-021-01520-w European Biophysics Journal |
ISSN: | 1432-1017 0175-7571 |
Popis: | Analysis of calorimetric and crystallographic information shows that the α-helix is maintained not only by the hydrogen bonds between its polar peptide groups, as originally supposed, but also by van der Waals interactions between tightly packed apolar groups in the interior of the helix. These apolar contacts are responsible for about 60% of the forces stabilizing the folded conformation of the α-helix and their exposure to water on unfolding results in the observed heat capacity increment, i.e. the temperature dependence of the melting enthalpy. The folding process is also favoured by an entropy increase resulting from the release of water from the peptide groups. A similar situation holds for the DNA double helix: calorimetry shows that the hydrogen bonding between conjugate base pairs provides a purely entropic contribution of about 40% to the Gibbs energy while the enthalpic van der Waals interactions between the tightly packed apolar parts of the base pairs provide the remaining 60%. Despite very different structures, the thermodynamic basis of α-helix and B-form duplex stability are strikingly similar. The general conclusion follows that the stability of protein folds is primarily dependent on internal atomic close contacts rather than the hydrogen bonds they contain. |
Databáze: | OpenAIRE |
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