Study / S4GTEAS4W2017-05-02

Sort-Seq Approach to Engineering a Formaldehyde-Inducible Promoter for Dynamically Regulated Escherichia coli Growth on Methanol

Julia Rohlhill, Nicholas R. Sandoval, Eleftherios T. Papoutsakis

About this study

Tight and tunable control of gene expression is a highly desirable goal in synthetic biology for constructing predictable gene circuits and achieving preferred phenotypes. Elucidating the sequence–function relationship of promoters is crucial for manipulating gene expression at the transcriptional level, particularly for inducible systems dependent on transcriptional regulators. Sort-seq methods employing fluorescence-activated cell sorting (FACS) and high-throughput sequencing allow for the quantitative analysis of sequence–function relationships in a robust and rapid way. Here we utilized a massively parallel sort-seq approach to analyze the formaldehyde-inducible Escherichia coli promoter (Pfrm) with single-nucleotide resolution. A library of mutated formaldehyde-inducible promoters was cloned upstream of gfp on a plasmid. The library was partitioned into bins via FACS on the basis of green fluorescent protein (GFP) expression level, and mutated promoters falling into each expression bin were identified with high-throughput sequencing. The resulting analysis identified two 19 base pair repressor binding sites, one upstream of the −35 RNA polymerase (RNAP) binding site and one overlapping with the −10 site, and assessed the relative importance of each position and base therein. Key mutations were identified for tuning expression levels and were used to engineer formaldehyde-inducible promoters with predictable activities. Engineered variants demonstrated up to 14-fold lower basal expression, 13-fold higher induced expression, and a 3.6-fold stronger response as indicated by relative dynamic range. Finally, an engineered formaldehyde-inducible promoter was employed to drive the expression of heterologous methanol assimilation genes and achieved increased biomass levels on methanol, a non-native substrate of E. coli.

Full author list & citation

Julia Rohlhill, Nicholas R. Sandoval, Eleftherios T. Papoutsakis. Sort-Seq Approach to Engineering a Formaldehyde-Inducible Promoter for Dynamically Regulated Escherichia coli Growth on Methanol. 2017-05-02. https://doi.org/10.1021/acssynbio.7b00114

Experiments 3

E1FJ81XAI

NEB5α Pfrm library sort-seq, 100 µM formaldehyde

A randomly mutagenized 200-bp Escherichia coli Pfrm promoter library driving GFP on a plasmid was FACS-sorted in NEB5α after 100 µM formaldehyde induction. Public amplicon sequencing from expression bins 2–9 was aggregated into per-position/base enrichment versus the unsorted library.

Sort-Seq / Flow-Seq MPRANCBITaxon:562NC_000913.3
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E58Q51VVR

ΔfrmR Pfrm library sort-seq, 0 µM formaldehyde

A randomly mutagenized 200-bp Escherichia coli Pfrm promoter library driving GFP on a plasmid was FACS-sorted in a BW25113 ΔfrmR background with plasmid-expressed FrmR under uninduced conditions. Public amplicon sequencing from seven deposited expression-bin groups was aggregated into per-position/base enrichment versus the unsorted library.

Sort-Seq / Flow-Seq MPRANCBITaxon:562NC_000913.3
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E6IRWQG6Z

NEB5α Pfrm library sort-seq, 0 µM formaldehyde

A randomly mutagenized 200-bp Escherichia coli Pfrm promoter library driving GFP on a plasmid was FACS-sorted in NEB5α without formaldehyde. Public amplicon sequencing from expression bins 2–9 was aggregated into per-position/base enrichment versus the unsorted library.

Sort-Seq / Flow-Seq MPRANCBITaxon:562NC_000913.3
Explore data

Raw source data 5 files

Original supplemental and deposited inputs retained for this study. Download files individually or together as a ZIP; nested folders are preserved. Source reuse terms apply, and sequencing reads may be omitted.

Download all 5 files (ZIP)Pfrm_native_reference.fastaPRJNA383844_bioproject_summary.jsonPRJNA383844_ENA_read_run_metadata.tsvREADME.txtsb7b00114_si_001.pdf

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