Molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns

The Tau protein plays an important role due to its biomolecular interactions in neurodegenerative diseases. The lack of stable structure and various posttranslational modifications such as phosphorylation at various sites in the Tau protein pose a challenge for many experimental methods that are tra...

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Main Authors: Gandhi, N., Kukic, P., Lippens, G., Mancera, Ricardo
Format: Book Chapter
Published: 2017
Online Access:http://hdl.handle.net/20.500.11937/4821
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author Gandhi, N.
Kukic, P.
Lippens, G.
Mancera, Ricardo
author_facet Gandhi, N.
Kukic, P.
Lippens, G.
Mancera, Ricardo
author_sort Gandhi, N.
building Curtin Institutional Repository
collection Online Access
description The Tau protein plays an important role due to its biomolecular interactions in neurodegenerative diseases. The lack of stable structure and various posttranslational modifications such as phosphorylation at various sites in the Tau protein pose a challenge for many experimental methods that are traditionally used to study protein folding and aggregation. Atomistic molecular dynamics (MD) simulations can help around deciphering relationship between phosphorylation and various intermediate and stable conformations of the Tau protein which occur on longer timescales. This chapter outlines protocols for the preparation, execution, and analysis of all-atom MD simulations of a 21-amino acid-long phosphorylated Tau peptide with the aim of generating biologically relevant structural and dynamic information. The simulations are done in explicit solvent and starting from nearly extended configurations of the peptide. The scaled MD method implemented in AMBER14 was chosen to achieve enhanced conformational sampling in addition to a conventional MD approach, thereby allowing the characterization of folding for such an intrinsically disordered peptide at 293 K. Emphasis is placed on the analysis of the simulation trajectories to establish correlations with NMR data (i.e., chemical shifts and NOEs). Finally, in-depth discussions are provided for commonly encountered problems.
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spelling curtin-20.500.11937-48212017-09-13T14:45:48Z Molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns Gandhi, N. Kukic, P. Lippens, G. Mancera, Ricardo The Tau protein plays an important role due to its biomolecular interactions in neurodegenerative diseases. The lack of stable structure and various posttranslational modifications such as phosphorylation at various sites in the Tau protein pose a challenge for many experimental methods that are traditionally used to study protein folding and aggregation. Atomistic molecular dynamics (MD) simulations can help around deciphering relationship between phosphorylation and various intermediate and stable conformations of the Tau protein which occur on longer timescales. This chapter outlines protocols for the preparation, execution, and analysis of all-atom MD simulations of a 21-amino acid-long phosphorylated Tau peptide with the aim of generating biologically relevant structural and dynamic information. The simulations are done in explicit solvent and starting from nearly extended configurations of the peptide. The scaled MD method implemented in AMBER14 was chosen to achieve enhanced conformational sampling in addition to a conventional MD approach, thereby allowing the characterization of folding for such an intrinsically disordered peptide at 293 K. Emphasis is placed on the analysis of the simulation trajectories to establish correlations with NMR data (i.e., chemical shifts and NOEs). Finally, in-depth discussions are provided for commonly encountered problems. 2017 Book Chapter http://hdl.handle.net/20.500.11937/4821 10.1007/978-1-4939-6598-4_3 restricted
spellingShingle Gandhi, N.
Kukic, P.
Lippens, G.
Mancera, Ricardo
Molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns
title Molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns
title_full Molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns
title_fullStr Molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns
title_full_unstemmed Molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns
title_short Molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns
title_sort molecular dynamics simulation of tau peptides for the investigation of conformational changes induced by specific phosphorylation patterns
url http://hdl.handle.net/20.500.11937/4821