Restriction-Modification systems interplay causes avoidance of GATC site in prokaryotic genomes

J Bioinform Comput Biol. 2016 Apr;14(2):1641003. doi: 10.1142/S0219720016410031. Epub 2016 Jan 28.

Abstract

Palindromes are frequently underrepresented in prokaryotic genomes. Palindromic 5[Formula: see text]-GATC-3[Formula: see text] site is a recognition site of different Restriction-Modification (R-M) systems, as well as solitary methyltransferase Dam. Classical GATC-specific R-M systems methylate GATC and cleave unmethylated GATC. On the contrary, methyl-directed Type II restriction endonucleases cleave methylated GATC. Methylation of GATC by Dam methyltransferase is involved in the regulation of different cellular processes. The diversity of functions of GATC-recognizing proteins makes GATC sequence a good model for studying the reasons of palindrome avoidance in prokaryotic genomes. In this work, the influence of R-M systems and solitary proteins on the GATC site avoidance is described by a mathematical model. GATC avoidance is strongly associated with the presence of alternate (methyl-directed or classical Type II R-M system) genes in different strains of the same species, as we have shown for Streptococcus pneumoniae, Neisseria meningitidis, Eubacterium rectale, and Moraxella catarrhalis. We hypothesize that GATC avoidance can result from a DNA exchange between strains with different methylation status of GATC site within the process of natural transformation. If this hypothesis is correct, the GATC avoidance is a sign of a DNA exchange between bacteria with different methylation status in a mixed population.

Keywords: GATC; Restriction-modification systems; bacteria; horizontal gene transfer; recognition site; site avoidance.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • DNA Methylation
  • DNA Restriction-Modification Enzymes / classification
  • DNA Restriction-Modification Enzymes / genetics
  • DNA Restriction-Modification Enzymes / metabolism*
  • Genome
  • Inverted Repeat Sequences / genetics*
  • Models, Biological
  • Multigene Family
  • Prokaryotic Cells
  • Site-Specific DNA-Methyltransferase (Adenine-Specific) / genetics
  • Site-Specific DNA-Methyltransferase (Adenine-Specific) / metabolism

Substances

  • DNA Restriction-Modification Enzymes
  • Dam methyltransferase
  • Site-Specific DNA-Methyltransferase (Adenine-Specific)