An efficient ORF selection system for DNA fragment libraries based on split beta-lactamase complementation.

PCR-based amplification of annotated genes has allowed construction of expression clones at genome-scale using classical and recombination-based cloning technologies. However, genome-scale expression and purification of proteins for down-stream applications is often limited by challenges such as poo...

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Main Authors: Vaishali Verma, Gopal Joshi, Amita Gupta, Vijay K Chaudhary
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0235853
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spelling doaj-29f7da4675cd40b89c54e890e272166d2021-03-03T21:56:06ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-01157e023585310.1371/journal.pone.0235853An efficient ORF selection system for DNA fragment libraries based on split beta-lactamase complementation.Vaishali VermaGopal JoshiAmita GuptaVijay K ChaudharyPCR-based amplification of annotated genes has allowed construction of expression clones at genome-scale using classical and recombination-based cloning technologies. However, genome-scale expression and purification of proteins for down-stream applications is often limited by challenges such as poor expression, low solubility, large size of multi-domain proteins, etc. Alternatively, DNA fragment libraries in expression vectors can serve as the source of protein fragments with each fragment encompassing a function of its whole protein counterpart. However, the random DNA fragmentation and cloning result in only 1 out of 18 clones being in the correct open-reading frame (ORF), thus, reducing the overall efficiency of the system. This necessitates the selection of correct ORF before expressing the protein fragments. This paper describes a highly efficient ORF selection system for DNA fragment libraries, which is based on split beta-lactamase protein fragment complementation. The system has been designed to allow seamless transfer of selected DNA fragment libraries into any downstream vector systems using a restriction enzyme-free cloning strategy. The strategy has been applied for the selection of ORF using model constructs to show near 100% selection of the clone encoding correct ORF. The system has been further validated by construction of an ORF-selected DNA fragment library of 30 genes of M. tuberculosis. Further, we have successfully demonstrated the cytosolic expression of ORF-selected protein fragments in E. coli.https://doi.org/10.1371/journal.pone.0235853
collection DOAJ
language English
format Article
sources DOAJ
author Vaishali Verma
Gopal Joshi
Amita Gupta
Vijay K Chaudhary
spellingShingle Vaishali Verma
Gopal Joshi
Amita Gupta
Vijay K Chaudhary
An efficient ORF selection system for DNA fragment libraries based on split beta-lactamase complementation.
PLoS ONE
author_facet Vaishali Verma
Gopal Joshi
Amita Gupta
Vijay K Chaudhary
author_sort Vaishali Verma
title An efficient ORF selection system for DNA fragment libraries based on split beta-lactamase complementation.
title_short An efficient ORF selection system for DNA fragment libraries based on split beta-lactamase complementation.
title_full An efficient ORF selection system for DNA fragment libraries based on split beta-lactamase complementation.
title_fullStr An efficient ORF selection system for DNA fragment libraries based on split beta-lactamase complementation.
title_full_unstemmed An efficient ORF selection system for DNA fragment libraries based on split beta-lactamase complementation.
title_sort efficient orf selection system for dna fragment libraries based on split beta-lactamase complementation.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2020-01-01
description PCR-based amplification of annotated genes has allowed construction of expression clones at genome-scale using classical and recombination-based cloning technologies. However, genome-scale expression and purification of proteins for down-stream applications is often limited by challenges such as poor expression, low solubility, large size of multi-domain proteins, etc. Alternatively, DNA fragment libraries in expression vectors can serve as the source of protein fragments with each fragment encompassing a function of its whole protein counterpart. However, the random DNA fragmentation and cloning result in only 1 out of 18 clones being in the correct open-reading frame (ORF), thus, reducing the overall efficiency of the system. This necessitates the selection of correct ORF before expressing the protein fragments. This paper describes a highly efficient ORF selection system for DNA fragment libraries, which is based on split beta-lactamase protein fragment complementation. The system has been designed to allow seamless transfer of selected DNA fragment libraries into any downstream vector systems using a restriction enzyme-free cloning strategy. The strategy has been applied for the selection of ORF using model constructs to show near 100% selection of the clone encoding correct ORF. The system has been further validated by construction of an ORF-selected DNA fragment library of 30 genes of M. tuberculosis. Further, we have successfully demonstrated the cytosolic expression of ORF-selected protein fragments in E. coli.
url https://doi.org/10.1371/journal.pone.0235853
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