Literature DB >> 23468286

Allosteric activation transitions in enzymes and biomolecular motors: insights from atomistic and coarse-grained simulations.

Michael D Daily1, Haibo Yu, George N Phillips, Qiang Cui.   

Abstract

The chemical step in enzymes is usually preceded by a kinetically distinct activation step that involves large-scale conformational transitions. In "simple" enzymes this step corresponds to the closure of the active site; in more complex enzymes, such as biomolecular motors, the activation step is more complex and may involve interactions with other biomolecules. These activation transitions are essential to the function of enzymes and perturbations in the scale and/or rate of these transitions are implicated in various serious human diseases; incorporating key flexibilities into engineered enzymes is also considered a major remaining challenge in rational enzyme design. Therefore it is important to understand the underlying mechanism of these transitions. This is a significant challenge to both experimental and computational studies because of the allosteric and multi-scale nature of such transitions. Using our recent studies of two enzyme systems, myosin and adenylate kinase (AK), we discuss how atomistic and coarse-grained simulations can be used to provide insights into the mechanism of activation transitions in realistic systems. Collectively, the results suggest that although many allosteric transitions can be viewed as domain displacements mediated by flexible hinges, there are additional complexities and various deviations. For example, although our studies do not find any evidence for "cracking" in AK, our results do underline the contribution of intra-domain properties (e.g., dihedral flexibility) to the rate of the transition. The study of mechanochemical coupling in myosin highlights that local changes important to chemistry require stabilization from more extensive structural changes; in this sense, more global structural transitions are needed to activate the chemistry in the active site. These discussions further emphasize the importance of better understanding factors that control the degree of co-operativity for allosteric transitions, again hinting at the intimate connection between protein stability and functional flexibility. Finally, a number of topics of considerable future interest are briefly discussed.

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Year:  2013        PMID: 23468286      PMCID: PMC3976962          DOI: 10.1007/128_2012_409

Source DB:  PubMed          Journal:  Top Curr Chem        ISSN: 0340-1022


  102 in total

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5.  Energy landscape along an enzymatic reaction trajectory: hinges or cracks?

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6.  Coarse-grained modeling of allosteric regulation in protein receptors.

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Review 8.  Enzyme (re)design: lessons from natural evolution and computation.

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9.  Large-scale allosteric conformational transitions of adenylate kinase appear to involve a population-shift mechanism.

Authors:  Karunesh Arora; Charles L Brooks
Journal:  Proc Natl Acad Sci U S A       Date:  2007-11-13       Impact factor: 11.205

10.  The atomistic mechanism of conformational transition in adenylate kinase: a TEE-REX molecular dynamics study.

Authors:  Marcus B Kubitzki; Bert L de Groot
Journal:  Structure       Date:  2008-08-06       Impact factor: 5.006

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  7 in total

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4.  Regulation and Plasticity of Catalysis in Enzymes: Insights from Analysis of Mechanochemical Coupling in Myosin.

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5.  Global transitions of proteins explored by a multiscale hybrid methodology: application to adenylate kinase.

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Journal:  Biophys J       Date:  2013-10-01       Impact factor: 4.033

6.  Mapping the Dynamics Landscape of Conformational Transitions in Enzyme: The Adenylate Kinase Case.

Authors:  Dechang Li; Ming S Liu; Baohua Ji
Journal:  Biophys J       Date:  2015-08-04       Impact factor: 4.033

7.  Allosteric modulation of cardiac myosin dynamics by omecamtiv mecarbil.

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Journal:  PLoS Comput Biol       Date:  2017-11-06       Impact factor: 4.475

  7 in total

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