Computational protein design with backbone plasticity
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Accepted version
Published version
Author(s)
MacDonald, J
Freemont, PS
Type
Journal Article
Abstract
The computational algorithms used in the design of artificial proteins have become increasingly sophisticated in recent years, producing a series of remarkable successes. The most dramatic of these is the de novo design of artificial enzymes. The majority of these designs have reused naturally occurring protein structures as ‘scaffolds’ onto which novel functionality can be grafted without having to redesign the backbone structure. The incorporation of backbone flexibility into protein design is a much more computationally challenging problem due to the greatly increased search space, but promises to remove the limitations of reusing natural protein scaffolds. In this review, we outline the principles of computational protein design methods and discuss recent efforts to consider backbone plasticity in the design process.
Date Issued
2016-10-19
Date Acceptance
2016-08-03
Citation
Biochemical Society Transactions, 2016, 44 (5), pp.1523-1529
ISSN
1470-8752
Publisher
Portland Press
Start Page
1523
End Page
1529
Journal / Book Title
Biochemical Society Transactions
Volume
44
Issue
5
Copyright Statement
This is an open access article published by Portland Press Limited on behalf of the Biochemical Society and distributed under the Creative Commons Attribution License 4.0 (CC BY).
License URL
Sponsor
Engineering & Physical Science Research Council (E
Grant Number
ERI-031108-EP/K034359/1
Subjects
Biochemistry & Molecular Biology
Medical Biochemistry And Metabolomics
Publication Status
Published