Studying Protein Conformational Dynamics using ...
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Studying Protein Conformational Dynamics using ...
Complement protein iC3b. Problem: no high-resolution structural model. (but two competing low-resolution models). Solution: SIMS yields a conformation.
Studying Protein Structure through Hydrogen Exchange and Conformational Sampling Didier Devaurs Rice University D. Antunes, J. Abella, M. Moll, L. Kavraki Rice University
M. Papanastasiou, D. Ricklin, J. Lambris University of Pennsylvania
Structure-function relationship active vs. inactive state
courtesy P. Gros
Structure-function relationship courtesy J. Cortés
courtesy K. Ahern
Structure-function relationship
courtesy A. Chhabra
Experimental techniques in structural biology highest resolution structural model X-ray crystallography structures in protein data bank (PDB)
… hydrogen exchange mass spectrometry (HX-MS)
lowest resolution
Objective: study a protein state described by low-resolution experimental data computational technique
known 3D structural model low-resolution experimental data
?
Hydrogen exchange detected by mass spectrometry (HX-MS)
Hydrogen exchange detected by mass spectrometry (HX-MS) Output: deuterium-uptake curves of peptides
Objective: study a protein state described by experimental HX data computational technique
known 3D structural model
conformational sampling
experimental HX data
Computational techniques for protein conformational sampling Molecular dynamics Markov-chain Monte Carlo
How to assess the conformations generated by the sampling method?
HX prediction model: conformation HX data
HX prediction model Phenomenological approximation of protection from hydrogen exchange [Vendruscolo, Paci, Karplus]
Idea: hydrogen exchange is influenced by residue—residue interactions - hydrogen bonds - packing density
Objective: study a protein state using HX data and conformational sampling coarse-grained conformational sampling
known 3D structural model
experimental HX data
HX prediction model: evaluate/bias sampling
App. 1: Improve the fit to experimental hydrogen exchange data phenomenological equation structurally-derived HX data
crystal structure
do not usually match
experimentally-observed HX data
Staphylococcal Nuclease (SN)
Difference between experimentally-obtained and structurally-derived HX data
App. 2: Analyze the variability of a protein’s native state experimental HX data
Complement protein C3d Differences between the PDB and SIMS conformations characterize the variability of C3d's native state
Difference between experimentally-obtained and structurally-derived HX data
App. 3: Generate a structural model for an unknown protein state coarse-grained conformational sampling
known 3D structural model
? unknown state
experimental HX data
bias sampling
Complement protein iC3b Problem: no high-resolution structural model (but two competing low-resolution models)
Solution: SIMS yields a conformation that helps validate one model
Conclusion Hydrogen exchange (HX-MS) combined with conformational sampling is useful to study protein structure
Current applications 1) improve the fit to experimental HX data 2) analyze the variability of a protein’s native state 3) generate a structural model for an unknown state