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Published on: July 12, 2013
From sequence to activity: the HgaI-homologous restriction modification system RM.MhoVI of Mycoplasma hominis
Lars Vogelgsang1, Manuel Dolgopolow-Schmidt2, Azlan Nisar2
1Institute of Med. Microbiology and Hospital Hygiene, Heinrich-Heine-University Duesseldorf, Duesseldorf, Germany. lars.vogelgsang@hhu.de.
Abstract:
Restriction-modification (RM) systems are widespread defense mechanisms in prokaryotes that protect the host from potentially harmful foreign DNA. They typically consist of a DNA methyltransferase (MTase), which methylates the host genome at an adenine (6 mA methylation) or cytosine (4mC or 5mC), and a restriction endonuclease (REase), which cleaves foreign, unmethylated DNA. In addition to the 2023 published family of 5mC-MTases, an HgaI-homolog RM system was detected in Mycoplasma hominis with the more rare constellation of two 5mC MTase genes, called RM.MhoVI. A qPCR screening of 239 randomly selected M. hominis isolates revealed a prevalence of the MhoVI-RM system of 12.97% (n = 31/239). Notably, in all tested MhoVI-positive isolates, the MhoVI-RM cassette localized between MHO_3110 and MHO_3120 and comprised an XRE-family transcriptional regulator gene in addition to the RM genes. Intra-species conservation of the encoded MhoVI-enzymes was high (> 99% identities), and inter-species conservation was the lowest compared to the eponymous species Haemophilus gallinarum (46.6% M1.MhoVI; 48.1% M2.MhoVI; 27.4% R.MhoVI). A polycistronic organization of the MhoVI-genes was strongly suspected due to the discovery of gene-overlapping mRNA regions. The MTases activity was demonstrated in RM.MhoVI positive M. hominis isolates by protection of genomic DNA from cleavage by the methylation-sensitive endonuclease HgaI; and bioinformatics analysis using the Dorado basecaller on the Oxford Nanopore sequenced genomes revealed methylation rates of the respective motifs, 5'-GAmCGC-3'/5'-GmCGTC-3', above 95% in MhoVI-positives, with a higher methylation frequency of 5'-GAmCGC-3' than 5'-GmCGTC-3 in most isolates. A final proof of MhoVI-RM representing an HgaI-RM-like methylation activity was demonstrated through expression and analysis of recombinant rM2.MhoVI in E. coli.
Insights
This study identifies a novel restriction-modification system, RM.MhoVI, in Mycoplasma hominis, prevalent in 13% of isolates. The system involves two 5-methylcytosine methyltransferases and confers high DNA methylation, protecting against foreign DNA.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Restriction-modification (RM) systems are prokaryotic defense mechanisms against foreign DNA.
- These systems typically involve DNA methyltransferases (MTases) and restriction endonucleases (REases).
- A novel RM system, RM.MhoVI, featuring two 5-cytosine methyltransferases (5mC-MTases), was identified in Mycoplasma hominis.
Purpose of the Study:
- To investigate the prevalence and characteristics of the MhoVI-RM system in Mycoplasma hominis.
- To confirm the methylation activity and characterize the MhoVI-RM system's function.
- To analyze the genetic organization and conservation of the MhoVI-RM system.
Main Methods:
- Quantitative PCR (qPCR) screening of M. hominis isolates.
- Bioinformatic analysis of Oxford Nanopore sequenced genomes.
- Expression and analysis of recombinant methyltransferase (rM2.MhoVI) in E. coli.
Main Results:
- The MhoVI-RM system was found in 12.97% of 239 M. hominis isolates, consistently located between MHO_3110 and MHO_3120.
- High intra-species conservation (>99%) and lower inter-species conservation of MhoVI enzymes were observed.
- Bioinformatic analysis revealed >95% methylation rates for specific motifs in MhoVI-positive isolates, confirmed by endonuclease protection assays and recombinant enzyme activity.
Conclusions:
- RM.MhoVI is a prevalent HgaI-homolog RM system in Mycoplasma hominis, characterized by two 5mC-MTases.
- The system exhibits high methylation activity, protecting host DNA via specific methylation patterns.
- The genetic organization suggests a polycistronic structure, with potential roles for the co-localized transcriptional regulator.
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