Study / S2BCTPBWN2010-05-03

Using deep sequencing to characterize the biophysical mechanism of a transcriptional regulatory sequence

Justin B. Kinney, Anand Murugan, Curtis G. Callan Jr., Edward C. Cox

About this study

Cells use protein-DNA and protein-protein interactions to regulate transcription. A biophysical understanding of this process has, however, been limited by the lack of methods for quantitatively characterizing the interactions that occur at specific promoters and enhancers in living cells. Here we show how such biophysical information can be revealed by a simple experiment in which a library of partially mutated regulatory sequences are partitioned according to their in vivo transcriptional activities and then sequenced en masse. Computational analysis of the sequence data produced by this experiment can provide precise quantitative information about how the regulatory proteins at a specific arrangement of binding sites work together to regulate transcription. This ability to reliably extract precise information about regulatory biophysics in the face of experimental noise is made possible by a recently identified relationship between likelihood and mutual information. Applying our experimental and computational techniques to the Escherichia coli lac promoter, we demonstrate the ability to identify regulatory protein binding sites de novo, determine the sequence-dependent binding energy of the proteins that bind these sites, and, importantly, measure the in vivo interaction energy between RNA polymerase and a DNA-bound transcription factor. Our approach provides a generally applicable method for characterizing the biophysical basis of transcriptional regulation by a specified regulatory sequence. The principles of our method can also be applied to a wide range of other problems in molecular biology.

Full author list & citation

Justin B. Kinney, Anand Murugan, Curtis G. Callan Jr., Edward C. Cox. Using deep sequencing to characterize the biophysical mechanism of a transcriptional regulatory sequence. 2010-05-03. https://doi.org/10.1073/pnas.1004290107

Experiments 6

E0TF3URP9

CRP-site mutagenesis Sort-Seq in E. coli MG1655 (500 µM cAMP)

A partially randomized library mutating the CRP-binding portion of the 75-nt lac promoter was assayed in a wild-type E. coli background. Reporter fluorescence was measured by FACS and sequence-to-bin assignments were recovered by 454 sequencing across ten batches (B0-B9).

Sort-Seq / Flow-Seq MPRANCBITaxon:511145
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E1A0L7TLN

Whole lac-promoter mutagenesis Sort-Seq in E. coli TK310 (150 µM cAMP)

A partially randomized library spanning the complete 75-nt lac-promoter sequence was assayed in the TK310 background with a reduced cAMP concentration. Reporter fluorescence was measured by FACS and sequence-to-bin assignments were recovered by 454 sequencing across five sorted batches (B1-B5).

Sort-Seq / Flow-Seq MPRANCBITaxon:511145
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E9Z9S49NI

RNAP-site mutagenesis Sort-Seq in E. coli MG1655 (500 µM cAMP)

A partially randomized library mutating the RNAP-contacting portion of the 75-nt lac promoter was assayed in a wild-type E. coli background. Reporter fluorescence was measured by FACS and sequence-to-bin assignments were recovered by 454 sequencing across ten batches (B0-B9).

Sort-Seq / Flow-Seq MPRANCBITaxon:511145
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Raw source data 32 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 32 files (ZIP)1004290107_Appendix.pdf454Data_16.1.txt454Data_16.2.txt454Data_16.4.txt454Data_18.2.A.txt454Data_18.2.B.txt454Data_18.2.E.txt454Data_wt1.txt454Data_wt2.txtall_aJK4.L.X_sequences.txtmodels_txt/crp_crpwt.26.txtmodels_txt/crp_full150.26.txtmodels_txt/crp_full500.26.txtmodels_txt/crp_fullwt.26.txtmodels_txt/crp_gunasekera.26.txtmodels_txt/crp_nagaraj.26.txtmodels_txt/crp_robison.26.txtmodels_txt/crp_tau_final_all.26.txtmodels_txt/crp_tau_fullwt.26.txtmodels_txt/crp_tau_sixepsionis.26.txtmodels_txt/rnap_full0.41.txtmodels_txt/rnap_full150.41.txtmodels_txt/rnap_full500.41.txtmodels_txt/rnap_fullwt.41.txtmodels_txt/rnap_harley.30.txtmodels_txt/rnap_rnapwt.36.txtmodels_txt/rnap_tau_final_all.41.txtmodels_txt/rnap_tau_fullwt.41.txtmodels_txt/rnap_tau_sixepsilonis.41.txtpipeline.pysource_notes.txtupstream_README.md

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