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Proton Binding to Proteins: A Free-Energy Component Analysis Using a Dielectric Continuum Model
- Source :
- Biophysical Journal, Biophysical Journal, Biophysical Society, 2005, 88 (6), pp.3888-904. ⟨10.1529/biophysj.104.055996⟩, Biophysical journal, Biophys.J.
- Publication Year :
- 2005
- Publisher :
- Elsevier BV, 2005.
-
Abstract
- Proton binding plays a critical role in protein structure and function. We report pKa calculations for three aspartates in two proteins, using a linear response approach, as well as a "standard" Poisson-Boltzmann approach. Averaging over conformations from the two endpoints of the proton-binding reaction, the protein's atomic degrees of freedom are explicitly modeled. Treating macroscopically the protein's electronic polarizability and the solvent, a meaningful model is obtained, without adjustable parameters. It reproduces qualitatively the electrostatic potentials, proton-binding free energies, Marcus reorganization free energies, and pKa shifts from explicit solvent molecular dynamics simulations, and the pKa shifts from experiment. For thioredoxin Asp-26, which has a large pKa upshift, we correctly capture the balance between unfavorable carboxylate desolvation and favorable interactions with a nearby lysine similarly for RNase A Asp-14, which has a large pKa downshift. For the unshifted thioredoxin Asp-20, desolvation by the protein cavity is overestimated by 2.9 pKa units several effects could explain this. "Standard" Poisson-Boltzmann methods sidestep this problem by using a large, ad hoc protein dielectric but protein charge-charge interactions are then incorrectly downscaled, giving an unbalanced description of the reaction and a large error for the shifted pKa values of Asp-26 and Asp-14. © 2005 by the Biophysical Society. 88 6 3888 3904 Cited By :56
- Subjects :
- MESH: Hydrogen-Ion Concentration
principal component analysis
protein binding
Biophysical Theory and Modeling
MESH: Aspartic Acid
Molecular dynamics
MESH: Thioredoxins
Thioredoxins
Computational chemistry
Static electricity
Poisson Boltzmann method
MESH: Proteins
electricity
free energy component analysis
MESH: Static Electricity
averaging
analytic method
MESH: Biophysical Phenomena
Chemistry
linear response method
MESH: Models, Chemical
article
protein function
Hydrogen-Ion Concentration
simulation
error
Chemical physics
Thermodynamics
carboxylic acid
MESH: Thermodynamics
Protons
Thioredoxin
energy
proton
Protein Binding
MESH: Ribonucleases
Proton binding
Static Electricity
Biophysics
Degrees of freedom (physics and chemistry)
physical phenomena
Dielectric
precipitation
solvent
mathematical analysis
Biophysical Phenomena
Ribonucleases
Electrostatics
Polarizability
electric potential
pKa
MESH: Protein Binding
[SDV.BBM]Life Sciences [q-bio]/Biochemistry, Molecular Biology
protein structure
MESH: Biophysics
polarization
Aspartic Acid
model
lysine
ribonuclease A
Proteins
thioredoxin
molecular dynamics
Marcus reorganization
electrostatic potential
Models, Chemical
desolvation
molecular interaction
aspartic acid
MESH: Protons
Protein pKa calculations
protein
dielectric continuum model
Subjects
Details
- ISSN :
- 00063495 and 15420086
- Volume :
- 88
- Database :
- OpenAIRE
- Journal :
- Biophysical Journal
- Accession number :
- edsair.doi.dedup.....b52e577d196a0e2ee570cb0f7b467dcb