Literature DB >> 29131580

Modular Self-Assembly of Protein Cage Lattices for Multistep Catalysis.

Masaki Uchida1, Kimberly McCoy1, Masafumi Fukuto, Lin Yang, Hideyuki Yoshimura1,2, Heini M Miettinen, Ben LaFrance, Dustin P Patterson3, Benjamin Schwarz1, Jonathan A Karty1, Peter E Prevelige4, Byeongdu Lee5, Trevor Douglas1.   

Abstract

The assembly of individual molecules into hierarchical structures is a promising strategy for developing three-dimensional materials with properties arising from interaction between the individual building blocks. Virus capsids are elegant examples of biomolecular nanostructures, which are themselves hierarchically assembled from a limited number of protein subunits. Here, we demonstrate the bio-inspired modular construction of materials with two levels of hierarchy: the formation of catalytically active individual virus-like particles (VLPs) through directed self-assembly of c<span class="Disease">apsid subunits with enzyme encapsulation, and the assembly of these VLP building blocks into three-dimensional arrays. The structure of the assembled arrays was successfully altered from an amorphous aggregate to an ordered structure, with a face-centered cubic lattice, by modifying the exterior surface of the VLP without changing its overall morphology, to modulate interparticle interactions. The assembly behavior and resultant lattice structure was a consequence of interparticle interaction between exterior surfaces of individual particles and thus independent of the enzyme cargos encapsulated within the VLPs. These superlattice materials, composed of two populations of enzyme-packaged VLP modules, retained the coupled catalytic activity in a two-step reaction for isobutanol synthesis. This study demonstrates a significant step toward the bottom-up fabrication of functional superlattice materials using a self-assembly process across multiple length scales and exhibits properties and function that arise from the interaction between individual building blocks.

Entities:  

Keywords:  coupled catalysis; enzyme encapsulation; hierarchical structure; nanoreactor; self-assembly; superlattice; virus-like particle

Mesh:

Substances:

Year:  2017        PMID: 29131580      PMCID: PMC5870838          DOI: 10.1021/acsnano.7b06049

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  52 in total

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4.  Implementation of p22 viral capsids as nanoplatforms.

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5.  DNA-guided crystallization of colloidal nanoparticles.

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6.  A virus-based single-enzyme nanoreactor.

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8.  Using synthetically modified proteins to make new materials.

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9.  DNA-mediated engineering of multicomponent enzyme crystals.

Authors:  Jeffrey D Brodin; Evelyn Auyeung; Chad A Mirkin
Journal:  Proc Natl Acad Sci U S A       Date:  2015-03-23       Impact factor: 11.205

10.  Biochemical and molecular characterization of alpha-ketoisovalerate decarboxylase, an enzyme involved in the formation of aldehydes from amino acids by Lactococcus lactis.

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  18 in total

1.  Direct visualization of single virus restoration after damage in real time.

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2.  Chemically Induced Morphogenesis of P22 Virus-like Particles by the Surfactant Sodium Dodecyl Sulfate.

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4.  Metal-dependent assembly of a protein nano-cage.

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5.  Substrate Partitioning into Protein Macromolecular Frameworks for Enhanced Catalytic Turnover.

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Journal:  ACS Nano       Date:  2021-09-02       Impact factor: 18.027

6.  Polymer Coatings on Virus-like Particle Nanoreactors at Low Ionic Strength-Charge Reversal and Substrate Access.

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7.  Molecular exclusion limits for diffusion across a porous capsid.

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Journal:  Nat Commun       Date:  2021-05-18       Impact factor: 14.919

8.  Design of metal-mediated protein assemblies via hydroxamic acid functionalities.

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Review 9.  Application of Plant Viruses as a Biotemplate for Nanomaterial Fabrication.

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10.  Engineering a Rugged Nanoscaffold To Enhance Plug-and-Display Vaccination.

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Journal:  ACS Nano       Date:  2018-07-26       Impact factor: 15.881

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