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Targeted DNA Methylation Analysis by Next-generation Sequencing
Published on: February 24, 2015
DNA Methylation Assessed by SMRT Sequencing Is Linked to Mutations in Neisseria meningitidis Isolates
Mohamad R Abdul Sater1,2,3, Araceli Lamelas1,2, Guilin Wang4
1Swiss Tropical and Public Health Institute, Socinstrasse 57, Basel, Switzerland.
Abstract:
The Gram-negative bacterium Neisseria meningitidis features extensive genetic variability. To present, proposed virulence genotypes are also detected in isolates from asymptomatic carriers, indicating more complex mechanisms underlying variable colonization modes of N. meningitidis. We applied the Single Molecule, Real-Time (SMRT) sequencing method from Pacific Biosciences to assess the genome-wide DNA modification profiles of two genetically related N. meningitidis strains, both of serogroup A. The resulting DNA methylomes revealed clear divergences, represented by the detection of shared and of strain-specific DNA methylation target motifs. The positional distribution of these methylated target sites within the genomic sequences displayed clear biases, which suggest a functional role of DNA methylation related to the regulation of genes. DNA methylation in N. meningitidis has a likely underestimated potential for variability, as evidenced by a careful analysis of the ORF status of a panel of confirmed and predicted DNA methyltransferase genes in an extended collection of N. meningitidis strains of serogroup A. Based on high coverage short sequence reads, we find phase variability as a major contributor to the variability in DNA methylation. Taking into account the phase variable loci, the inferred functional status of DNA methyltransferase genes matched the observed methylation profiles. Towards an elucidation of presently incompletely characterized functional consequences of DNA methylation in N. meningitidis, we reveal a prominent colocalization of methylated bases with Single Nucleotide Polymorphisms (SNPs) detected within our genomic sequence collection. As a novel observation we report increased mutability also at 6mA methylated nucleotides, complementing mutational hotspots previously described at 5mC methylated nucleotides. These findings suggest a more diverse role of DNA methylation and Restriction-Modification (RM) systems in the evolution of prokaryotic genomes.
Insights
Neisseria meningitidis exhibits significant genetic variability. DNA methylation, influenced by phase variability, contributes to this diversity and impacts gene regulation and mutation rates in this bacterium.
Area of Science:
- Microbiology
- Genomics
- Epigenetics
Background:
- Neisseria meningitidis displays extensive genetic variability, with virulence factors found in both disease-causing and asymptomatic strains.
- Understanding the mechanisms behind N. meningitidis colonization and adaptation is crucial due to its clinical significance.
Purpose of the Study:
- To investigate genome-wide DNA modification profiles in Neisseria meningitidis serogroup A strains using SMRT sequencing.
- To explore the role of DNA methylation in bacterial genome evolution and gene regulation.
Main Methods:
- Application of Single Molecule, Real-Time (SMRT) sequencing to determine DNA methylomes of N. meningitidis strains.
- Analysis of DNA methyltransferase gene status and phase variable loci in an extended strain collection.
- Identification and analysis of methylated bases in relation to Single Nucleotide Polymorphisms (SNPs).
Main Results:
- DNA methylomes revealed strain-specific methylation target motifs, suggesting functional roles in gene regulation.
- Phase variability was identified as a key driver of DNA methylation variability in N. meningitidis.
- Methylated bases (5mC and 6mA) showed increased mutability and colocalization with SNPs, indicating a role in genome evolution.
Conclusions:
- DNA methylation in N. meningitidis is a significant source of genetic variability, underestimated in previous studies.
- DNA methylation and Restriction-Modification (RM) systems play a diverse role in the evolution of prokaryotic genomes.
- The findings provide insights into the functional consequences of DNA methylation in bacterial adaptation and evolution.

