Cell-free genomics reveals fundamental regulatory principles of the Mycobacterium tuberculosis transcription cycle
Ruby Froom1, Michael B Wolfe2, Kelly N Eckartt3
1Laboratory of Molecular Pathogenesis, The Rockefeller University, New York, NY 10065, USA; Laboratory of Host-Pathogen Biology, The Rockefeller University, New York, NY 10065, USA.
Abstract:
Tiers of gene regulation govern cellular life. The intrinsic activities of RNA polymerase (RNAP) constitute a primary tier, while direct modulation by accessory transcription factors (TFs) constitutes a secondary tier. Cellular signaling cascades and feedback loops generate tertiary and higher-order tiers. Dissecting gene regulation requires distinguishing direct TF targets at the genome scale from indirect network effects. A major obstacle is the lack of tools to interrogate transcription machineries from difficult-to-culture microbes-such as pathogens, commensals, and environmental species-at the genome scale. Here, we introduce cell-free genomics (CFG), an empirical approach that identifies the direct targets of RNAP and TFs and systematizes their transcriptional effects. We demonstrate the efficacy of CFG by characterizing global and essential transcription initiation (CRP and holo-WhiB1) and elongation-termination factors (NusA and NusG) from the deadly pathogen, Mycobacterium tuberculosis. CFG expands our understanding of transcription principles and is broadly extensible to other perturbations and diverse species.
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