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Published on: December 26, 2020
Transcriptional activation of sclA by Mga requires a distal binding site in Streptococcus pyogenes
Audry C Almengor1, Kevin S McIver
1Department of Microbiology, University of Texas Southwestern Medical Center, Dallas, TX 75390-9048, USA.
Abstract:
Streptococcus pyogenes (the group A streptococcus [GAS]) is a medically significant pathogen of humans, causing a range of diseases from pharyngitis to necrotizing fasciitis. Several important GAS virulence genes are under the control of a pleiotropic regulator called Mga, or the multiple gene regulator of GAS, including the gene encoding the streptococcal collagen-like protein, or sclA. Analysis of the genome sequence upstream of sclA revealed two potential Mga-binding sites with homology to the published Mga-binding element, which were called PsclA-I (distal) and PsclA-II (proximal) based on their location relative to a predicted start of transcription. Primer extension was used to confirm that the Mga-dependent transcriptional start site for sclA was located adjacent to the proximal PsclA-II binding site. By using overlapping PsclA promoter probes and purified Mga-His fusion protein, it was shown by electrophoretic mobility shift assays that, unlike other Mga-regulated promoters, Mga binds only to a distal DNA-binding site (PsclA-I). Binding of Mga to PsclA-I could be competed with cold probes corresponding to known Mga-regulated promoters (Pemm, PscpA, and Pmga) but not with a nonspecific probe or the proximal PsclA-II fragment. With the use of a plasmid-based green fluorescent protein transcriptional reporter system, the full-length PsclA was not sufficient to reproduce normal Mga-regulated activation. However, studies using a single-copy gusA transcriptional reporter system integrated at the native sclA chromosomal locus clearly demonstrated that the distal PsclA-I binding site is required for Mga regulation. Therefore, PsclA represents a new class of Mga-regulated promoters that requires a single distal binding site for activation.
Insights
The multiple gene regulator (Mga) controls Streptococcus pyogenes virulence. Researchers found Mga binds a single distal site (PsclA-I) to regulate the sclA gene, revealing a new Mga-regulated promoter class.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Streptococcus pyogenes (GAS) is a significant human pathogen.
- The multiple gene regulator (Mga) controls key GAS virulence factors.
- The streptococcal collagen-like protein (sclA) is an important GAS virulence gene regulated by Mga.
Purpose of the Study:
- To investigate the Mga-binding sites and regulatory mechanism of the sclA gene.
- To characterize the role of potential Mga-binding sites (PsclA-I and PsclA-II) in sclA gene regulation.
Main Methods:
- Bioinformatic analysis of the sclA upstream region.
- Primer extension to identify the transcriptional start site.
- Electrophoretic mobility shift assays (EMSA) with purified Mga protein.
- Transcriptional reporter assays using green fluorescent protein and gusA systems.
Main Results:
- Two potential Mga-binding sites, PsclA-I (distal) and PsclA-II (proximal), were identified upstream of sclA.
- Mga specifically binds to the distal PsclA-I site, not the proximal PsclA-II site.
- The distal PsclA-I site is essential for Mga-dependent regulation of sclA transcription.
Conclusions:
- The sclA promoter represents a novel class of Mga-regulated promoters.
- Mga regulation of sclA requires a single, distal DNA-binding site.
- This finding advances understanding of GAS virulence gene regulation by Mga.
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