EMD-22886

Single-particle
2.94 Å
EMD-22886 Deposition: 23/10/2020
Map released: 21/04/2021
Last modified: 29/05/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-22886

Mycobacterium tuberculosis WT RNAP transcription open promoter complex with WhiB7 transcription factor

EMD-22886

Single-particle
2.94 Å
EMD-22886 Deposition: 23/10/2020
Map released: 21/04/2021
Last modified: 29/05/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Mycobacterium tuberculosis
Sample: Mycobacterium tuberculosis WT RNAP transcription open promoter complex with WhiB7 transcription factor
Fitted models: 7kif (Avg. Q-score: 0.49)
Raw data: EMPIAR-10851

Deposition Authors: Lilic M, Darst SA
Structural basis of transcriptional activation by the Mycobacterium tuberculosis intrinsic antibiotic-resistance transcription factor WhiB7.
Lilic M, Darst SA, Campbell EA
(2021) Mol Cell , 81 , 2875 - 2886.e5
PUBMED: 34171296
DOI: doi:10.1016/j.molcel.2021.05.017
ISSN: 1097-2765
ASTM: MOCEFL
Abstract:
In pathogenic mycobacteria, transcriptional responses to antibiotics result in induced antibiotic resistance. WhiB7 belongs to the Actinobacteria-specific family of Fe-S-containing transcription factors and plays a crucial role in inducible antibiotic resistance in mycobacteria. Here, we present cryoelectron microscopy structures of Mycobacterium tuberculosis transcriptional regulatory complexes comprising RNA polymerase σA-holoenzyme, global regulators CarD and RbpA, and WhiB7, bound to a WhiB7-regulated promoter. The structures reveal how WhiB7 interacts with σA-holoenzyme while simultaneously interacting with an AT-rich sequence element via its AT-hook. Evidently, AT-hooks, rare elements in bacteria yet prevalent in eukaryotes, bind to target AT-rich DNA sequences similarly to the nuclear chromosome binding proteins. Unexpectedly, a subset of particles contained a WhiB7-stabilized closed promoter complex, revealing this intermediate's structure, and we apply kinetic modeling and biochemical assays to rationalize how WhiB7 activates transcription. Altogether, our work presents a comprehensive view of how WhiB7 serves to activate gene expression leading to antibiotic resistance.