LacI operator-only Sort-Seq libraries
Operator-only Sort-Seq libraries were generated at R≈130 with the O1 or O2 lac operator as the reference. Only the LacI operator was mutagenized, allowing comparison with the full-promoter library design.
Stephanie L. Barnes, Nathan M. Belliveau, William T. Ireland, Justin B. Kinney, Rob Phillips
Despite the central importance of transcriptional regulation in biology, it has proven difficult to determine the regulatory mechanisms of individual genes, let alone entire gene networks. It is particularly difficult to decipher the biophysical mechanisms of transcriptional regulation in living cells and determine the energetic properties of binding sites for transcription factors and RNA polymerase. In this work, we present a strategy for dissecting transcriptional regulatory sequences using in vivo methods (massively parallel reporter assays) to formulate quantitative models that map a transcription factor binding site’s DNA sequence to transcription factor-DNA binding energy. We use these models to predict the binding energies of transcription factor binding sites to within 1 kBT of their measured values. We further explore how such a sequence-energy mapping relates to the mechanisms of trancriptional regulation in various promoter contexts. Specifically, we show that our models can be used to design specific induction responses, analyze the effects of amino acid mutations on DNA sequence preference, and determine how regulatory context affects a transcription factor’s sequence specificity.
Stephanie L. Barnes, Nathan M. Belliveau, William T. Ireland, Justin B. Kinney, Rob Phillips. Mapping DNA sequence to transcription factor binding energy in vivo. 2019-02-04. https://doi.org/10.1371/journal.pcbi.1006226
Operator-only Sort-Seq libraries were generated at R≈130 with the O1 or O2 lac operator as the reference. Only the LacI operator was mutagenized, allowing comparison with the full-promoter library design.
Full-promoter Sort-Seq libraries were built from the three natural E. coli lac operators (O1, O2, and O3) with approximately 10% mutagenesis across the lacUV5 promoter and operator. Libraries were assayed in LacI copy-number backgrounds of approximately R=30, 62, 130, and 610 tetramers; the table summarizes published matrix-derived substitutions and appends the paper’s independent operator-mutant validation records.
O1 operator-only Sort-Seq libraries were assayed at R≈130 with three LacI DNA-binding-domain variants (Y20I, Q21A, and Q21M). The table summarizes the inferred relative substitution effects for each protein background.
An O1 LacI binding site positioned upstream of the RNAP binding site was mutagenized and analyzed by Sort-Seq at approximately R=130. This tests whether regulatory context changes the inferred LacI sequence specificity.
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.
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