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Magic Pools: Parallel Assessment of Transposon Delivery Vectors in Bacteria

Transposon mutagenesis coupled to next-generation sequencing (TnSeq) is a powerful approach for discovering the functions of bacterial genes. However, the development of a suitable TnSeq strategy for a given bacterium can be costly and time-consuming. To meet this challenge, we describe a part-based...

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Autores principales: Liu, Hualan, Price, Morgan N., Waters, Robert Jordan, Ray, Jayashree, Carlson, Hans K., Lamson, Jacob S., Chakraborty, Romy, Arkin, Adam P., Deutschbauer, Adam M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5768790/
https://www.ncbi.nlm.nih.gov/pubmed/29359196
http://dx.doi.org/10.1128/mSystems.00143-17
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author Liu, Hualan
Price, Morgan N.
Waters, Robert Jordan
Ray, Jayashree
Carlson, Hans K.
Lamson, Jacob S.
Chakraborty, Romy
Arkin, Adam P.
Deutschbauer, Adam M.
author_facet Liu, Hualan
Price, Morgan N.
Waters, Robert Jordan
Ray, Jayashree
Carlson, Hans K.
Lamson, Jacob S.
Chakraborty, Romy
Arkin, Adam P.
Deutschbauer, Adam M.
author_sort Liu, Hualan
collection PubMed
description Transposon mutagenesis coupled to next-generation sequencing (TnSeq) is a powerful approach for discovering the functions of bacterial genes. However, the development of a suitable TnSeq strategy for a given bacterium can be costly and time-consuming. To meet this challenge, we describe a part-based strategy for constructing libraries of hundreds of transposon delivery vectors, which we term “magic pools.” Within a magic pool, each transposon vector has a different combination of upstream sequences (promoters and ribosome binding sites) and antibiotic resistance markers as well as a random DNA barcode sequence, which allows the tracking of each vector during mutagenesis experiments. To identify an efficient vector for a given bacterium, we mutagenize it with a magic pool and sequence the resulting insertions; we then use this efficient vector to generate a large mutant library. We used the magic pool strategy to construct transposon mutant libraries in five genera of bacteria, including three genera of the phylum Bacteroidetes. IMPORTANCE Molecular genetics is indispensable for interrogating the physiology of bacteria. However, the development of a functional genetic system for any given bacterium can be time-consuming. Here, we present a streamlined approach for identifying an effective transposon mutagenesis system for a new bacterium. Our strategy first involves the construction of hundreds of different transposon vector variants, which we term a “magic pool.” The efficacy of each vector in a magic pool is monitored in parallel using a unique DNA barcode that is introduced into each vector design. Using archived DNA “parts,” we next reassemble an effective vector for making a whole-genome transposon mutant library that is suitable for large-scale interrogation of gene function using competitive growth assays. Here, we demonstrate the utility of the magic pool system to make mutant libraries in five genera of bacteria.
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spelling pubmed-57687902018-01-22 Magic Pools: Parallel Assessment of Transposon Delivery Vectors in Bacteria Liu, Hualan Price, Morgan N. Waters, Robert Jordan Ray, Jayashree Carlson, Hans K. Lamson, Jacob S. Chakraborty, Romy Arkin, Adam P. Deutschbauer, Adam M. mSystems Research Article Transposon mutagenesis coupled to next-generation sequencing (TnSeq) is a powerful approach for discovering the functions of bacterial genes. However, the development of a suitable TnSeq strategy for a given bacterium can be costly and time-consuming. To meet this challenge, we describe a part-based strategy for constructing libraries of hundreds of transposon delivery vectors, which we term “magic pools.” Within a magic pool, each transposon vector has a different combination of upstream sequences (promoters and ribosome binding sites) and antibiotic resistance markers as well as a random DNA barcode sequence, which allows the tracking of each vector during mutagenesis experiments. To identify an efficient vector for a given bacterium, we mutagenize it with a magic pool and sequence the resulting insertions; we then use this efficient vector to generate a large mutant library. We used the magic pool strategy to construct transposon mutant libraries in five genera of bacteria, including three genera of the phylum Bacteroidetes. IMPORTANCE Molecular genetics is indispensable for interrogating the physiology of bacteria. However, the development of a functional genetic system for any given bacterium can be time-consuming. Here, we present a streamlined approach for identifying an effective transposon mutagenesis system for a new bacterium. Our strategy first involves the construction of hundreds of different transposon vector variants, which we term a “magic pool.” The efficacy of each vector in a magic pool is monitored in parallel using a unique DNA barcode that is introduced into each vector design. Using archived DNA “parts,” we next reassemble an effective vector for making a whole-genome transposon mutant library that is suitable for large-scale interrogation of gene function using competitive growth assays. Here, we demonstrate the utility of the magic pool system to make mutant libraries in five genera of bacteria. American Society for Microbiology 2018-01-16 /pmc/articles/PMC5768790/ /pubmed/29359196 http://dx.doi.org/10.1128/mSystems.00143-17 Text en https://doi.org/10.1128/AuthorWarrantyLicense.v1 This is a work of the U.S. Government and is not subject to copyright protection in the United States. Foreign copyrights may apply.
spellingShingle Research Article
Liu, Hualan
Price, Morgan N.
Waters, Robert Jordan
Ray, Jayashree
Carlson, Hans K.
Lamson, Jacob S.
Chakraborty, Romy
Arkin, Adam P.
Deutschbauer, Adam M.
Magic Pools: Parallel Assessment of Transposon Delivery Vectors in Bacteria
title Magic Pools: Parallel Assessment of Transposon Delivery Vectors in Bacteria
title_full Magic Pools: Parallel Assessment of Transposon Delivery Vectors in Bacteria
title_fullStr Magic Pools: Parallel Assessment of Transposon Delivery Vectors in Bacteria
title_full_unstemmed Magic Pools: Parallel Assessment of Transposon Delivery Vectors in Bacteria
title_short Magic Pools: Parallel Assessment of Transposon Delivery Vectors in Bacteria
title_sort magic pools: parallel assessment of transposon delivery vectors in bacteria
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5768790/
https://www.ncbi.nlm.nih.gov/pubmed/29359196
http://dx.doi.org/10.1128/mSystems.00143-17
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