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Published on: April 26, 2019
Transcription regulation by CarD in mycobacteria is guided by basal promoter kinetics
Dennis X Zhu1, Christina L Stallings1
1Department of Molecular Microbiology, Center for Women's Infectious Disease Research, Washington University School of Medicine, St Louis, Missouri, USA.
Insights
CarD, a transcription factor essential for Mycobacterium tuberculosis, regulates gene expression by binding RNA polymerase. Its regulatory outcome depends on promoter stability, not DNA sequence, offering new insights into bacterial transcription control.
Area of Science:
- Molecular Biology
- Microbiology
- Genetics
Background:
- Mycobacterium tuberculosis (Mtb) utilizes transcription factors for host adaptation.
- CarD is a vital transcription factor in Mtb, essential for its survival.
- Classical transcription factors bind DNA motifs, but CarD interacts with RNA polymerase.
Purpose of the Study:
- To elucidate how CarD achieves promoter-specific transcription regulation in Mtb.
- To test the model that CarD's regulatory outcome depends on promoter open complex (RPo) stability.
- To investigate the influence of DNA supercoiling on CarD's regulatory activity.
Main Methods:
- In vitro transcription assays using a panel of promoters with varying RPo stability.
- Site-directed mutagenesis of promoter regions to alter RPo stability.
- RNA-sequencing to assess CarD's in vivo transcriptional effects.
Main Results:
- CarD activates transcription from the Mtb ribosomal RNA promoter AP3, with activation inversely correlated to RPo stability.
- CarD represses transcription from promoters with stable RPo, particularly those with mutations in the -10 and discriminator regions.
- DNA supercoiling modulates RPo stability and influences the direction of CarD-mediated regulation.
Conclusions:
- CarD's regulatory outcome is determined by the kinetic properties of the promoter's open complex, not solely by DNA sequence.
- This mechanism explains how RNA polymerase-binding factors can achieve promoter-specific gene regulation.
- CarD's activity is influenced by promoter RPo stability and DNA supercoiling, revealing complex regulatory control in Mtb.
Abstract:
Bacterial pathogens like Mycobacterium tuberculosis (Mtb) employ transcription factors to adapt their physiology to the diverse environments within their host. CarD is a conserved bacterial transcription factor that is essential for viability in Mtb. Unlike classical transcription factors that recognize promoters by binding to specific DNA sequence motifs, CarD binds directly to the RNA polymerase to stabilize the open complex intermediate (RPo) during transcription initiation. We previously showed using RNA-sequencing that CarD is capable of both activating and repressing transcription in vivo. However, it is unknown how CarD achieves promoter-specific regulatory outcomes in Mtb despite binding indiscriminate of DNA sequence. We propose a model where CarD's regulatory outcome depends on the promoter's basal RPo stability and test this model using in vitro transcription from a panel of promoters with varying levels of RPo stability. We show that CarD directly activates full-length transcript production from the Mtb ribosomal RNA promoter rrnAP3 (AP3) and that the degree of transcription activation by CarD is negatively correlated with RPo stability. Using targeted mutations in the extended -10 and discriminator region of AP3, we show that CarD directly represses transcription from promoters that form relatively stable RPo. DNA supercoiling also influenced RPo stability and affected the direction of CarD regulation, indicating that the outcome of CarD activity can be regulated by factors beyond promoter sequence. Our results provide experimental evidence for how RNA polymerase-binding transcription factors like CarD can exert specific regulatory outcomes based on the kinetic properties of a promoter.
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