Start-stop assembly: a functionally scarless DNA assembly system optimized for metabolic engineering
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Supporting information
Published version
Author(s)
Taylor, George
Mordaka, Paweł
Heap, John
Type
Journal Article
Abstract
DNA assembly allows individual DNA constructs or libraries to be assembled quickly and reliably. Most methods are either: (i) Modular, easily scalable and suitable for combinatorial assembly, but leave undesirable ‘scar’ sequences; or (ii) bespoke (non-modular), scarless but less suitable for construction of combinatorial libraries. Both have limitations for metabolic engineering. To overcome this trade-off we devised Start-Stop Assembly, a multi-part, modular DNA assembly method which is both functionally scarless and suitable for combinatorial assembly. Crucially, 3 bp overhangs corresponding to start and stop codons are used to assemble coding sequences into expression units, avoiding scars at sensitive coding sequence boundaries. Building on this concept, a complete DNA assembly framework was designed and implemented, allowing assembly of up to 15 genes from up to 60 parts (or mixtures); monocistronic, operon-based or hybrid configurations; and a new streamlined assembly hierarchy minimising the number of vectors. Only one destination vector is required per organism, reflecting our optimisation of the system for metabolic engineering in diverse organisms. Metabolic engineering using Start-Stop Assembly was demonstrated by combinatorial assembly of carotenoid pathways in E. coli resulting in a wide range of carotenoid production and colony size phenotypes indicating the intended exploration of design space.
Date Issued
2019-02-20
Date Acceptance
2018-11-05
Citation
Nucleic Acids Research, 2019, 47 (3), pp.e17-e17
ISSN
0305-1048
Publisher
Oxford University Press
Start Page
e17
End Page
e17
Journal / Book Title
Nucleic Acids Research
Volume
47
Issue
3
Copyright Statement
©The Author(s) 2018. Published by Oxford University Press on behalf of Nucleic Acids Research.This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), whichpermits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
Sponsor
Biotechnology and Biological Sciences Research Council
Biotechnology and Biological Sciences Research Council (BBSRC)
Grant Number
BB/M002454/1
BB/M002454/1
Subjects
Science & Technology
Life Sciences & Biomedicine
Biochemistry & Molecular Biology
ESCHERICHIA-COLI
GENE-EXPRESSION
IN-VITRO
PATHWAY
CLONING
DESIGN
LYCOPENE
SEQUENCE
STANDARD
QUALITY
Carotenoids
Cloning, Molecular
DNA
Escherichia coli
Genetic Vectors
Metabolic Engineering
Metabolic Networks and Pathways
Escherichia coli
Carotenoids
DNA
Cloning, Molecular
Genetic Vectors
Metabolic Networks and Pathways
Metabolic Engineering
Developmental Biology
05 Environmental Sciences
06 Biological Sciences
08 Information and Computing Sciences
Publication Status
Published
Date Publish Online
2018-11-20