The free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.

αβ-tubulin dimers need to convert between a 'bent' conformation observed for free dimers in solution and a 'straight' conformation required for incorporation into the microtubule lattice. Here, we investigate the free energy landscape of αβ-tubulin using molecular dynamics simula...

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Main Authors: Lili X Peng, Monica T Hsu, Massimiliano Bonomi, David A Agard, Matthew P Jacobson
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-02-01
Series:PLoS Computational Biology
Online Access:http://europepmc.org/articles/PMC3916224?pdf=render
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spelling doaj-ae05e0f33f324044a3a57f9ca0314e9a2020-11-25T01:46:01ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582014-02-01102e100346410.1371/journal.pcbi.1003464The free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.Lili X PengMonica T HsuMassimiliano BonomiDavid A AgardMatthew P Jacobsonαβ-tubulin dimers need to convert between a 'bent' conformation observed for free dimers in solution and a 'straight' conformation required for incorporation into the microtubule lattice. Here, we investigate the free energy landscape of αβ-tubulin using molecular dynamics simulations, emphasizing implications for models of assembly, and modulation of the conformational landscape by colchicine, a tubulin-binding drug that inhibits microtubule polymerization. Specifically, we performed molecular dynamics, potential-of-mean force simulations to obtain the free energy profile for unpolymerized GDP-bound tubulin as a function of the ∼12° intradimer rotation differentiating the straight and bent conformers. Our results predict that the unassembled GDP-tubulin heterodimer exists in a continuum of conformations ranging between straight and bent, but, in agreement with existing structural data, suggests that an intermediate bent state has a lower free energy (by ∼1 kcal/mol) and thus dominates in solution. In agreement with predictions of the lattice model of microtubule assembly, lateral binding of two αβ-tubulins strongly shifts the conformational equilibrium towards the straight state, which is then ∼1 kcal/mol lower in free energy than the bent state. Finally, calculations of colchicine binding to a single αβ-tubulin dimer strongly shifts the equilibrium toward the bent states, and disfavors the straight state to the extent that it is no longer thermodynamically populated.http://europepmc.org/articles/PMC3916224?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Lili X Peng
Monica T Hsu
Massimiliano Bonomi
David A Agard
Matthew P Jacobson
spellingShingle Lili X Peng
Monica T Hsu
Massimiliano Bonomi
David A Agard
Matthew P Jacobson
The free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.
PLoS Computational Biology
author_facet Lili X Peng
Monica T Hsu
Massimiliano Bonomi
David A Agard
Matthew P Jacobson
author_sort Lili X Peng
title The free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.
title_short The free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.
title_full The free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.
title_fullStr The free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.
title_full_unstemmed The free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.
title_sort free energy profile of tubulin straight-bent conformational changes, with implications for microtubule assembly and drug discovery.
publisher Public Library of Science (PLoS)
series PLoS Computational Biology
issn 1553-734X
1553-7358
publishDate 2014-02-01
description αβ-tubulin dimers need to convert between a 'bent' conformation observed for free dimers in solution and a 'straight' conformation required for incorporation into the microtubule lattice. Here, we investigate the free energy landscape of αβ-tubulin using molecular dynamics simulations, emphasizing implications for models of assembly, and modulation of the conformational landscape by colchicine, a tubulin-binding drug that inhibits microtubule polymerization. Specifically, we performed molecular dynamics, potential-of-mean force simulations to obtain the free energy profile for unpolymerized GDP-bound tubulin as a function of the ∼12° intradimer rotation differentiating the straight and bent conformers. Our results predict that the unassembled GDP-tubulin heterodimer exists in a continuum of conformations ranging between straight and bent, but, in agreement with existing structural data, suggests that an intermediate bent state has a lower free energy (by ∼1 kcal/mol) and thus dominates in solution. In agreement with predictions of the lattice model of microtubule assembly, lateral binding of two αβ-tubulins strongly shifts the conformational equilibrium towards the straight state, which is then ∼1 kcal/mol lower in free energy than the bent state. Finally, calculations of colchicine binding to a single αβ-tubulin dimer strongly shifts the equilibrium toward the bent states, and disfavors the straight state to the extent that it is no longer thermodynamically populated.
url http://europepmc.org/articles/PMC3916224?pdf=render
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