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Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

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Introduction to Molecular Dynamics Simulation
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Page 1: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Introduction to Molecular Dynamics Simulation

Page 2: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Protein Folding

Exploring the Folding Landscape

Page 3: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Uses of Molecular Dynamics Simulation:

•structure•flexibility•solvent effects•chemical reactions•ion channels•thermodynamics (free energy changes, binding)•spectroscopy•NMR/crystallography

Page 4: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Atomic-Detail Computer Simulation

Model System

Molecular Mechanics Potential

ji ij

ji

ji ij

ij

ij

ijij

impropersdihedrals

N

n

n

anglesbondsb

Dr

qq

rr

KnK

kbbkV

,,

612

20

1

20

20

4

cos1

Energy Surface Exploration by Simulation..

Page 5: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Model System

•set of atoms•explicit/implicit solvent•periodic boundary conditions

Potential Function

•empirical•chemically intuitive•quick to calculate

Tradeoff: simplicity (timescale) versus accuracy

Page 6: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Lysozyme in explicit water

Page 7: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

2/8MM Energy Function

l

r

qi qj

Page 8: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Newton’s Law:

Fi=force on ith atommi = mass of ith atomai=acceleration of ith atom

Page 9: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Newton’s Law:Newton’s Law:

i

ii r

VF

iii amF

Potential Function Force

Page 10: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Taylor:

Verlet’s Method

Page 11: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Molecular dynamics:Integration timestep - 1 femtosecondSet by fastest varying force.Accessible timescale about 100 nanoseconds.

Bond vibrations - 1 fsCollective vibrations - 1 psConformational transitions - ps or longerEnzyme catalysis - microsecond/millisecondLigand Binding - micro/millisecondProtein Folding - millisecond/second

Timescales.

Page 12: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.
Page 13: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Ensemble AverageObservable

StatisticalMechanics

1 hr

Ergodic Hypothesis:MD Simulation:

Page 14: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Ensemble Average:

Observable:

Probability density:

StatisticalMechanics

Page 15: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Ergodic Hypothesis:MD Simulation:

e.g.:

Page 16: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Analysis of MD

ConfigurationsAveragesFluctuationsTime Correlations

Page 17: Introduction to Molecular Dynamics Simulation. Protein Folding Exploring the Folding Landscape.

Analysis of fluctuations


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