Literature DB >> 27117092

Allosteric Control of Icosahedral Capsid Assembly.

Guillermo R Lazaro1, Michael F Hagan1.   

Abstract

During the life cycle of a virus, viral proteins and other components self-assemble to form an ordered protein shell called a capsid. This assembly process is subject to multiple competing constraints, including the need to form a thermostable shell while avoiding kinetic traps. It has been proposed that viral assembly satisfies these constraints through allosteric regulation, including the interconversion of capsid proteins among conformations with different propensities for assembly. In this article, we use computational and theoretical modeling to explore how such allostery affects the assembly of icosahedral shells. We simulate assembly under a wide range of protein concentrations, protein binding affinities, and two different mechanisms of allosteric control. We find that above a threshold strength of allosteric control, assembly becomes robust over a broad range of subunit binding affinities and concentrations, allowing the formation of highly thermostable capsids. Our results suggest that allostery can significantly shift the range of protein binding affinities that lead to successful assembly and thus should be taken into account in models that are used to estimate interaction parameters from experimental data.

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Year:  2016        PMID: 27117092      PMCID: PMC5367391          DOI: 10.1021/acs.jpcb.6b02768

Source DB:  PubMed          Journal:  J Phys Chem B        ISSN: 1520-5207            Impact factor:   2.991


  82 in total

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Journal:  Virology       Date:  2004-08-01       Impact factor: 3.616

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3.  Distinguishing reversible from irreversible virus capsid assembly.

Authors:  Adam Zlotnick
Journal:  J Mol Biol       Date:  2006-11-11       Impact factor: 5.469

4.  Irreversible growth model for virus capsid assembly.

Authors:  Stephen D Hicks; C L Henley
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2006-09-25

5.  A kinetic study of in vitro polymerization of flagellin.

Authors:  S Asakura
Journal:  J Mol Biol       Date:  1968-07-14       Impact factor: 5.469

6.  Nucleation and growth phases in the polymerization of coat and scaffolding subunits into icosahedral procapsid shells.

Authors:  P E Prevelige; D Thomas; J King
Journal:  Biophys J       Date:  1993-03       Impact factor: 4.033

7.  Characterization of hepatitis B virus capsids by resistive-pulse sensing.

Authors:  Kaimeng Zhou; Lichun Li; Zhenning Tan; Adam Zlotnick; Stephen C Jacobson
Journal:  J Am Chem Soc       Date:  2011-01-25       Impact factor: 15.419

8.  A parameter estimation technique for stochastic self-assembly systems and its application to human papillomavirus self-assembly.

Authors:  M Senthil Kumar; Russell Schwartz
Journal:  Phys Biol       Date:  2010-12-09       Impact factor: 2.583

9.  Mechanism of capsid assembly for an icosahedral plant virus.

Authors:  A Zlotnick; R Aldrich; J M Johnson; P Ceres; M J Young
Journal:  Virology       Date:  2000-11-25       Impact factor: 3.616

10.  Self-assembly of brome mosaic virus capsids: insights from shorter time-scale experiments.

Authors:  Chao Chen; C Cheng Kao; Bogdan Dragnea
Journal:  J Phys Chem A       Date:  2008-08-28       Impact factor: 2.781

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  10 in total

1.  Assembly Reactions of Hepatitis B Capsid Protein into Capsid Nanoparticles Follow a Narrow Path through a Complex Reaction Landscape.

Authors:  Roi Asor; Lisa Selzer; Christopher John Schlicksup; Zhongchao Zhao; Adam Zlotnick; Uri Raviv
Journal:  ACS Nano       Date:  2019-06-25       Impact factor: 15.881

2.  Why Enveloped Viruses Need Cores-The Contribution of a Nucleocapsid Core to Viral Budding.

Authors:  Guillermo R Lázaro; Suchetana Mukhopadhyay; Michael F Hagan
Journal:  Biophys J       Date:  2018-02-06       Impact factor: 4.033

3.  The Mechanism of Action of Hepatitis B Virus Capsid Assembly Modulators Can Be Predicted from Binding to Early Assembly Intermediates.

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Journal:  J Med Chem       Date:  2022-03-15       Impact factor: 8.039

4.  Hysteresis in Hepatitis B Virus (HBV) Requires Assembly of Near-Perfect Capsids.

Authors:  Caleb A Starr; Lauren F Barnes; Martin F Jarrold; Adam Zlotnick
Journal:  Biochemistry       Date:  2022-03-08       Impact factor: 3.321

5.  Molecular jenga: the percolation phase transition (collapse) in virus capsids.

Authors:  Nicholas E Brunk; Lye Siang Lee; James A Glazier; William Butske; Adam Zlotnick
Journal:  Phys Biol       Date:  2018-06-06       Impact factor: 2.583

6.  Kinetic constraints on self-assembly into closed supramolecular structures.

Authors:  Thomas C T Michaels; Mathias M J Bellaiche; Michael F Hagan; Tuomas P J Knowles
Journal:  Sci Rep       Date:  2017-09-25       Impact factor: 4.379

7.  Gaussian curvature and the budding kinetics of enveloped viruses.

Authors:  Sanjay Dharmavaram; Selene Baochen She; Guillermo Lázaro; Michael Francis Hagan; Robijn Bruinsma
Journal:  PLoS Comput Biol       Date:  2019-08-21       Impact factor: 4.475

8.  Stochastic yield catastrophes and robustness in self-assembly.

Authors:  Florian M Gartner; Isabella R Graf; Patrick Wilke; Philipp M Geiger; Erwin Frey
Journal:  Elife       Date:  2020-02-05       Impact factor: 8.140

9.  Investigating the thermal dissociation of viral capsid by lattice model.

Authors:  Jingzhi Chen; Maelenn Chevreuil; Sophie Combet; Yves Lansac; Guillaume Tresset
Journal:  J Phys Condens Matter       Date:  2017-11-29       Impact factor: 2.333

10.  The time complexity of self-assembly.

Authors:  Florian M Gartner; Isabella R Graf; Erwin Frey
Journal:  Proc Natl Acad Sci U S A       Date:  2022-01-25       Impact factor: 11.205

  10 in total

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