Gene regulation is one of the most ubiquitous processes in biology. However, while the catalog of bacterial genomes continues to expand rapidly, we remain ignorant about how almost all of the genes in these genomes are regulated. At present, characterizing the molecular mechanisms by which individual regulatory sequences operate requires focused efforts using low-throughput methods. Here, we take a first step toward multipromoter dissection and show how a combination of massively parallel reporter assays, mass spectrometry, and information-theoretic modeling can be used to dissect multiple bacterial promoters in a systematic way. We show this approach on both well-studied and previously uncharacterized promoters in the enteric bacterium Escherichia coli. In all cases, we recover nucleotide-resolution models of promoter mechanism. For some promoters, including previously unannotated ones, the approach allowed us to further extract quantitative biophysical models describing input–output relationships. Given the generality of the approach presented here, it opens up the possibility of quantitatively dissecting the mechanisms of promoter function in E. coli and a wide range of other bacteria.
Full author list & citation
Nathan M. Belliveau, Stephanie L. Barnes, William T. Ireland, Daniel L. Jones, Michael J. Sweredoski, Annie Moradian, Sonja Hess, Justin B. Kinney, Rob Phillips. Systematic approach for dissecting the molecular mechanisms of transcriptional regulation in bacteria. 2018-05-22. https://doi.org/10.1073/pnas.1722055115
A continuous mut2 mutagenized window in the marRAB promoter was tested in E. coli K-12 MG1655 under LB medium without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the marRAB promoter was tested in E. coli K-12 MG1655 ΔmarR under LB medium without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the relBE promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the relBE promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the xylE promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% xylose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 ΔdgoR under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the marRAB promoter was tested in E. coli K-12 MG1655 ΔmarR under LB medium without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the marRAB promoter was tested in E. coli K-12 MG1655 under LB medium without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the yebG promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut3 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 ΔdgoR under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the yebG promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose with 1 µg/ml mitomycin c. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
The relBE promoter mutagenized window was used to test FACS sorting sensitivity in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose with facs gate: approximately 22% per bin. The table contains the author-derived position-level expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.23% D-galactonate without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut3 mutagenized window in the purT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose with 100 µg/ml adenine. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the purT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the purT promoter was tested in E. coli K-12 MG1655 ΔpurR under M9 minimal medium + 0.5% glucose with 100 µg/ml adenine. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut3 mutagenized window in the dgoRKADT promoter was tested in E. coli JK10 (MG1655 ΔcyaAΔcpdA derivative) under EZrich MOPS medium + glucose with 0 µm added camp. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the purT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose with 100 µg/ml adenine. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
The relBE promoter mutagenized window was used to test FACS sorting sensitivity in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose with facs gate: eight bins, approximately 10% per bin. The table contains the author-derived position-level expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the xylE promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% xylose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut3 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut3 mutagenized window in the dgoRKADT promoter was tested in E. coli JK10 (MG1655 ΔcyaAΔcpdA derivative) under EZrich MOPS medium + D-galactonate with 500 µm camp. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the yebG promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose with 1 µg/ml mitomycin c. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the relBE promoter was tested in E. coli K-12 MG1655 ΔrelBE under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the purT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut3 mutagenized window in the xylE promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% xylose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the purT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose with 100 µg/ml adenine. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the yebG promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut3 mutagenized window in the purT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.23% D-galactonate without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the lacZYA promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the marRAB promoter was tested in E. coli K-12 MG1655 ΔmarRAB under LB medium without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
The relBE promoter mutagenized window was used to test FACS sorting sensitivity in E. coli K-12 MG1655 under M9 minimal medium + 0.5% glucose with facs gate: approximately 15% per bin. The table contains the author-derived position-level expression shifts and mutual-information scores after package QC.
A continuous mut1 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 ΔdgoR under M9 minimal medium + 0.5% glucose without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut3 mutagenized window in the dgoRKADT promoter was tested in E. coli K-12 MG1655 under M9 minimal medium + 0.23% D-galactonate without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
A continuous mut2 mutagenized window in the marRAB promoter was tested in E. coli K-12 MG1655 ΔmarRAB under LB medium without a stated biological treatment. The table contains author-derived base-resolution expression shifts and mutual-information scores after package QC.
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.