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Published on: March 11, 2022
Trinucleotide GAA repeats dictate pMGA gene expression in Mycoplasma gallisepticum by affecting spacing between
Li Liu1, Victor S Panangala, Kevin Dybvig
1Department of Genomics and Pathobiology, Volker Hall, University of Alabama at Birmingham, Birmingham, AL 35294, USA.
Abstract:
The pMGA genes of the avian respiratory pathogen Mycoplasma gallisepticum encode a family of hemagglutinins that are subject to phase variation. A trinucleotide GAA repeat region is located upstream of the pMGA transcription start site. The length of the repeat region varies at a high frequency due to changes in the number of repeat units. Previous studies have shown that pMGA genes are transcribed when 12 GAA repeats are present but are not transcribed when the number of repeats is not 12. To further analyze the mechanism of gene regulation, the pMGA promoter region was modified either by deleting the nucleotides 5" of the GAA repeats or by inserting linkers of 10 or 12 bp at a position 3" of the repeats. The modified promoter region was fused to a promoterless lacZ gene and transformed into M. gallisepticum by using transposon Tn4001 as a vector. Transformants and successive generations of progeny were analyzed with 5-bromo-4-chloro-3-indolyl-beta-D-galactopyranoside (X-Gal) to monitor beta-galactosidase activity. For the transformants of M. gallisepticum containing the reporter with deletion of nucleotides 5" of the GAA repeats, GAA-dependent pMGA gene regulation was abolished. For the transformants containing the reporter with an addition of 10- or 12-bp linkers, lacZ was expressed only when eight GAA repeats were present. These data indicate that the nucleotides 5" of the GAA repeats as well as the spacing between the GAA repeats and sequences downstream (3") of the repeats are important for pMGA gene expression.
Insights
Mycoplasma gallisepticum pMGA gene expression is regulated by GAA repeats. Changes in repeat number and surrounding DNA sequences significantly impact hemagglutinin gene transcription and phase variation.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Mycoplasma gallisepticum is an avian pathogen.
- pMGA genes encode hemagglutinins involved in phase variation.
- A GAA trinucleotide repeat region upstream of pMGA genes controls transcription.
Purpose of the Study:
- To investigate the regulatory mechanism of pMGA gene expression.
- To determine the role of GAA repeat number and flanking sequences in gene regulation.
Main Methods:
- Modification of the pMGA promoter region (deletions and insertions).
- Fusion of modified promoters to a promoterless lacZ reporter gene.
- Transformation into M. gallisepticum and analysis of beta-galactosidase activity using X-Gal.
Main Results:
- Deletion of nucleotides 5' to GAA repeats abolished GAA-dependent regulation.
- Insertion of 10- or 12-bp linkers resulted in lacZ expression with eight GAA repeats.
- Both upstream sequences and spacing downstream of GAA repeats are crucial for pMGA expression.
Conclusions:
- pMGA gene regulation is sensitive to alterations in the GAA repeat region and its flanking sequences.
- The precise number of GAA repeats and their surrounding DNA context are critical for controlling hemagglutinin expression in Mycoplasma gallisepticum.
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