Title: Jeremy C. Smith, University of Heidelberg
1Introduction to Protein Simulations and Drug
Design
Jeremy C. Smith, University of Heidelberg
2Computational Molecular Biophysics
Universität Heidelberg
The Boss
3Some Problems to be Solved
Protein Folding and Structure. Enzyme Reaction
Mechanisms. Bioenergetic Systems e.g., ion
transport, light-driven. Protein Dynamics and
Relation to Function. Large-Scale Conformational
Change. Ligand Binding and Macromolecular
Association.
4(No Transcript)
5Computer Simulation - Basic Principles
Model System
or QM/MM Potential
Molecular Mechanics Potential
Simulation - exploring the energy landscape
6Some Simulation Methods
Normal Mode Analysis (Jianpeng Ma) Molecular
Dynamics (Bert de Groot/Phil Biggin) Minimum-Ener
gy Pathways
7Protein Folding and Structure. Enzyme Reaction
Mechanisms. Bioenergetic Systems e.g., ion
transport, light-driven. Protein Dynamics and
Relation to Function. Large-Scale Conformational
Change. Ligand Binding and Macromolecular
Association.
8Protein FoldingFunnel
9Protein Folding
1) What structure does a given sequence have?
- comparative modelling - energy-based (ab
initio)? - data-base based
(knowledge)? 2) How does a protein fold?
..computer simulation?.
10Bundeshochleistungsrechner Hitachi SR8000-F1
11Protein Folding
ANDREEA GRUIA
Exploring the Folding Landscape
(Johan Åqvist Free Energy Calculations)
12Safety in Numbers
13(No Transcript)
14(No Transcript)
15Protein Folding. Protein Structure. Enzyme
Reaction Mechanisms. Bioenergetic Systems e.g.ion
transport,light-driven. Protein Dynamics and
Relation to Function. Large-Scale Conformational
Change. Ligand Binding and Macromolecular
Association.
16QM/MM - (Gerrit Groenhof/Ursula Rothlisberger)
Model System
17ATP Hydrolysis by Myosin
SONJA SCHWARZL
18Protein Folding. Protein Structure. Enzyme
Reaction Mechanisms. Bioenergetic Systems e.g.ion
transport,light-driven. Protein Dynamics and
Relation to Function. Large-Scale Conformational
Change. Ligand Binding and Macromolecular
Association.
19Charge Transfer in Biological Systems
Membranes and Membrane Proteins
- Light-Driven (Excited States)?
- (Gerrit Groenhof)
- Electron Transfer (Excited States?)
- Ion Transfer (H,K,Cl-)
- Molecule Transfer (H2O)
- (Bert de Groot)
20ANDREEA GRUIA
Halorhodopsin - Chloride Pumping at Atomic
Resolution
21(No Transcript)
22Protein Folding. Protein Structure. Enzyme
Reaction Mechanisms. Bioenergetic Systems e.g.ion
transport,light-driven. Protein Dynamics and
Relation to Function. Large-Scale Conformational
Change. Ligand Binding and Macromolecular
Association.
23Experiment
(Wilfred van Gunsteren)
Molecular Dynamics Simulation
Simplified Description
24The Protein Glass Transition
25ALEX TOURNIER
Mode Incipient at Myoglobin Glass Transition
26Protein Folding. Protein Structure. Self-Assembly
of Biological Structures. Enzyme Reaction
Mechanisms. Bioenergetic Systems e.g.ion
transport,light-driven. Protein Dynamics and
Relation to Function. Large-Scale Conformational
Change. Ligand Binding and Macromolecular
Association.
27Power Stroke in Muscle Contraction.
28Protein Folding. Protein Structure. Self-Assembly
of Biological Structures. Enzyme Reaction
Mechanisms. Bioenergetic Systems e.g.ion
transport,light-driven. Protein Dynamics and
Relation to Function. Large-Scale Conformational
Change. Ligand Binding and Macromolecular
Association. ? Drug Design
29Drug Design
High Throughput Screening ?104 ligands per day
?
But Hit Rate 10-6 per ligand
30(No Transcript)
31Drug Design
- Finding the Right Key for the Lock
William Lipscomb Drug design for Diabetes Type II
32Is the structure of the target known?
33Ligands
Target
34Ligand Binding.
Ligand
Protein
Complex
Two Approaches 1) Binding Free Energy
Calculations 2) Empirical Scoring Functions
35What is the binding free energy?
FRAUKE MEYER
entropic effects
protein
polar and non-polar interactions with the
solvent
ligand
k1
k-1
polar and non-polar protein-ligand interactions
water
complex
36Electrostatics Thermodynamic Cycle
37Methods
- flexibility (Jon Essex)
- MD (Daan van Aalten)
- scoring functions, virtual screening (Martin
Stahl, Qi Chen) - prediction of active sites (Gerhard Klebe)
- active site homologies
38Fast Calculation of Absolute Binding Free
Energies Interaction of Benzamidine Analogs
with Trypsin
SONJA SCHWARZL STEFAN FISCHER
Benzamidine-like Trypsin Inhibitors
Energy Terms and Results
- van der Waals proteinligand - hydrophobic
effect (surface area dependent) - electrostatic
interactions (continuum approach) -
translational, rotational, vibrational degrees of
freedom
39ANDREA VAIANA MARKUS SAUER JUERGEN
WOLFRUM ANDREAS SCHULTZ
Cancer Biotechnology.
Detection of Individual p53-Autoantibodies in
Human Sera
40R6G ab initio structure
RHF 6-31G basis set
41Fluorescence Quenching of Dyes by Trytophan
Quencher
MR121
Dye
42Fluorescently labeled Peptide
?
43Analysis
r
44(No Transcript)
45Strategy
Quenched
Fluorescent
Results
46Things to learn (if you dont know them already)
1) Which different angles can my problem be
approached from? (talk to people from different
fields).
2) Can I bring a new angle to someone elses
apparently very unrelated problem?
3) Where are the information sources?
4) Do not respect professors (question them)
47(No Transcript)