Javascript must be enabled to continue!
Folding PDZ2 domain using the Molecular Transfer Model
View through CrossRef
Abstract
A major challenge in molecular simulations is to describe denaturant-dependent folding of proteins order to make direct comparisons with
in vitro
experiments. We use the molecular transfer model (MTM), which is currently the only method that accomplishes this goal albeit phenomenologically, to quantitatively describe urea-dependent folding of PDZ domain, which plays a significant role in molecular recognition and signaling. Experiments show that urea-dependent unfolding rates of the PDZ2 domain exhibit a downward curvature at high urea concentrations ([
C
]s), which has been interpreted by invoking the presence of a sparsely populated high energy intermediate. Simulations using the MTM and a coarse-grained Self-Organized Polymer (SOP) representation of PDZ2 are used to show that the intermediate (
I
EQ
), which has some native-like character, is present in equilibrium both in the presence and absence of urea. The free energy profiles as a function of the structural overlap order parameter show that there are two barriers separating the folded and unfolded states. Structures of the transition state ensembles, (
TSE
1 separating the unfolded and
I
EQ
and
TSE
2 separating
I
EQ
and the native state), determined using the
P
fold
method, show that
TSE
1 is greatly expanded while
TSE
2 is compact and native-like. Folding trajectories reveal that PDZ2 folds by parallel routes. In one pathway folding occurs exclusively through
I
1
, which resembles
I
EQ
. In a fraction of trajectories, constituting the second pathway, folding occurs through a combination of
I
1
and a kinetic intermediate. We establish that the radius of gyration (
) of the unfolded state is more compact (by ∼ 9%) under native conditions. Theory and simulations show that the decrease in
occurs on the time scale on the order of utmost ~ 20
μβ.
The modest decrease in
and the rapid collapse suggest that high spatial and temporal resolution, currently beyond the scope of most small angle X-ray scattering experiments, are needed to detect compaction in finite-sized proteins. The present work further establishes that MTM is efficacious in producing nearly quantitative predictions for folding of proteins under conditions used to carry out experiments.
Title: Folding PDZ2 domain using the Molecular Transfer Model
Description:
Abstract
A major challenge in molecular simulations is to describe denaturant-dependent folding of proteins order to make direct comparisons with
in vitro
experiments.
We use the molecular transfer model (MTM), which is currently the only method that accomplishes this goal albeit phenomenologically, to quantitatively describe urea-dependent folding of PDZ domain, which plays a significant role in molecular recognition and signaling.
Experiments show that urea-dependent unfolding rates of the PDZ2 domain exhibit a downward curvature at high urea concentrations ([
C
]s), which has been interpreted by invoking the presence of a sparsely populated high energy intermediate.
Simulations using the MTM and a coarse-grained Self-Organized Polymer (SOP) representation of PDZ2 are used to show that the intermediate (
I
EQ
), which has some native-like character, is present in equilibrium both in the presence and absence of urea.
The free energy profiles as a function of the structural overlap order parameter show that there are two barriers separating the folded and unfolded states.
Structures of the transition state ensembles, (
TSE
1 separating the unfolded and
I
EQ
and
TSE
2 separating
I
EQ
and the native state), determined using the
P
fold
method, show that
TSE
1 is greatly expanded while
TSE
2 is compact and native-like.
Folding trajectories reveal that PDZ2 folds by parallel routes.
In one pathway folding occurs exclusively through
I
1
, which resembles
I
EQ
.
In a fraction of trajectories, constituting the second pathway, folding occurs through a combination of
I
1
and a kinetic intermediate.
We establish that the radius of gyration (
) of the unfolded state is more compact (by ∼ 9%) under native conditions.
Theory and simulations show that the decrease in
occurs on the time scale on the order of utmost ~ 20
μβ.
The modest decrease in
and the rapid collapse suggest that high spatial and temporal resolution, currently beyond the scope of most small angle X-ray scattering experiments, are needed to detect compaction in finite-sized proteins.
The present work further establishes that MTM is efficacious in producing nearly quantitative predictions for folding of proteins under conditions used to carry out experiments.
Related Results
Intrinsically Dominant Conformational Diversity in PDZ1 within the Tandem PDZ1-PDZ2 of Human Syntenin-1 Underlined by Crystal Structures
Intrinsically Dominant Conformational Diversity in PDZ1 within the Tandem PDZ1-PDZ2 of Human Syntenin-1 Underlined by Crystal Structures
Abstract
The intrinsic dynamic asymmetry between homologous PDZ domains in multidomain scaffold proteins offers critical insights into evolutionary mechanisms enabl...
Cotranslational protein folding can promote the formation of correct folding intermediate
Cotranslational protein folding can promote the formation of correct folding intermediate
Abstract
Cotranslational folding is vital for proteins to form correct structures in vivo. However, it is still unclear how a nascent chain folds at atomic resoluti...
In vivo aspects of protein folding and quality control
In vivo aspects of protein folding and quality control
BACKGROUND
Proteins are synthesized on ribosomes as linear chains of amino acids and must fold into unique three-dimensional structures to fulfill their biologi...
Procedure for Western blot v1
Procedure for Western blot v1
Goal: This document has the objective of standardizing the protocol for Western blot. This technique allows the detection of specific proteins separated on polyacrylamide gel and t...
Pathfinder: protein folding pathway prediction based on conformational sampling
Pathfinder: protein folding pathway prediction based on conformational sampling
Abstract
The study of protein folding mechanism is a challenge in molecular biology, which is of great significance for revealing the movement rules of biological m...
Hydrophobic folding units at protein‐protein interfaces: Implications to protein folding and to protein‐protein association
Hydrophobic folding units at protein‐protein interfaces: Implications to protein folding and to protein‐protein association
AbstractA hydrophobic folding unit cutting algorithm, originally developed for dissecting single‐chain proteins, has been applied to a dataset of dissimilar two‐chain protein‐prote...
The Wako-Saitô-Muñoz-Eaton Model for Predicting Protein Folding and Dynamics
The Wako-Saitô-Muñoz-Eaton Model for Predicting Protein Folding and Dynamics
Despite the recent advances in the prediction of protein structures by deep neutral networks, the elucidation of protein-folding mechanisms remains challenging. A promising theory ...
Analysis of Protein Folding by Protein Engineering
Analysis of Protein Folding by Protein Engineering
Abstract
Denatured proteins can in many cases refold to the native structure. It is generally accepted that the folding has to progress along a specific pathway (1),...

