Literature DB >> 15307195

Understanding the alpha-helix to coil transition in polypeptides using network rigidity: predicting heat and cold denaturation in mixed solvent conditions.

Donald J Jacobs1, Gregory G Wood.   

Abstract

Thermodynamic stability in polypeptides is described using a novel Distance Constraint Model (DCM). Here, microscopic interactions are represented as constraints. A topological arrangement of constraints define a mechanical framework. Each constraint in the framework is associated with an enthalpic and entropic contribution. All accessible topological arrangements of distance constraints form an ensemble of mechanical frameworks, each representing a microstate of the polypeptide. A partition function is calculated exactly using a transfer matrix approach, where in many respects the DCM is similar to the Lifson-Roig model. The crucial difference is that the effect of network rigidity is explicitly calculated for each mechanical framework in the ensemble. Network rigidity is a mechanical interaction that provides a mechanism for long-range molecular cooperativity and enables a proper treatment of the nonadditivity of a microscopic free energy decomposition. Accounting for (1) helix <--> coil conformation changes along the backbone similar to the Lifson-Roig model, (2) i to i + 4 hydrogen-bond formation <--> breaking similar to the Zimm-Bragg model, and (3) structured <--> unstructured solvent interaction (hydration effects), a six-parameter DCM describes normal and inverted helix-coil transitions in polypeptides. Under suitable mixed solvent conditions heat and cold denaturation is predicted. Model parameters are fitted to experimental data showing different degrees of cold denaturation in monomeric polypeptides in aqueous hexafluoroisopropanol (HFIP) solution at various HFIP concentrations. By assuming a linear HFIP concentration dependence (up to 6% by mole fraction) on model parameters, all essential experimentally observed features are captured.

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Year:  2004        PMID: 15307195      PMCID: PMC4667961          DOI: 10.1002/bip.20102

Source DB:  PubMed          Journal:  Biopolymers        ISSN: 0006-3525            Impact factor:   2.505


  43 in total

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3.  The role of alpha-, 3(10)-, and pi-helix in helix-->coil transitions.

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5.  Structure validation by Calpha geometry: phi,psi and Cbeta deviation.

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6.  The stability of hydrogen-bonded peptide structures in aqueous solution.

Authors:  J A SCHELLMAN
Journal:  C R Trav Lab Carlsberg Chim       Date:  1955

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Authors:  P J Gans; P C Lyu; M C Manning; R W Woody; N R Kallenbach
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9.  Group additive contributions to the alcohol-induced alpha-helix formation of melittin: implication for the mechanism of the alcohol effects on proteins.

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  13 in total

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2.  Conserved quantitative stability/flexibility relationships (QSFR) in an orthologous RNase H pair.

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3.  Nonadditivity in the alpha-helix to coil transition.

Authors:  Gregory G Wood; Drew A Clinkenbeard; Donald J Jacobs
Journal:  Biopolymers       Date:  2010-12-23       Impact factor: 2.505

4.  Enthalpic and entropic stages in alpha-helical peptide unfolding, from laser T-jump/UV Raman spectroscopy.

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5.  Elucidating quantitative stability/flexibility relationships within thioredoxin and its fragments using a distance constraint model.

Authors:  Donald J Jacobs; Dennis R Livesay; Jeremy Hules; Maria Luisa Tasayco
Journal:  J Mol Biol       Date:  2006-02-24       Impact factor: 5.469

6.  Helix/coil nucleation: a local response to global demands.

Authors:  Oleg K Vorov; Dennis R Livesay; Donald J Jacobs
Journal:  Biophys J       Date:  2009-12-02       Impact factor: 4.033

7.  Nonadditivity in conformational entropy upon molecular rigidification reveals a universal mechanism affecting folding cooperativity.

Authors:  Oleg K Vorov; Dennis R Livesay; Donald J Jacobs
Journal:  Biophys J       Date:  2011-02-16       Impact factor: 4.033

8.  Interplay between desolvation and secondary structure in mediating cosolvent and temperature induced alpha-synuclein aggregation.

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9.  Conformational Entropy of an Ideal Cross-Linking Polymer Chain.

Authors:  Oleg K Vorov; Dennis R Livesay; Donald J Jacobs
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10.  Mechanism of cis-inhibition of polyQ fibrillation by polyP: PPII oligomers and the hydrophobic effect.

Authors:  Gregory D Darnell; JohnMark Derryberry; Josh W Kurutz; Stephen C Meredith
Journal:  Biophys J       Date:  2009-10-21       Impact factor: 4.033

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