The effect of C(5) cytosine methylation at CpG sequences on mitomycin-DNA bonding profiles

V S Li1, M S Tang, H Kohn

  • 1Department of Chemistry, University of Houston, TX 77204-5641, USA.

Insights

Cytosine methylation enhances mitomycin C DNA adduction, particularly at CpG sites. This DNA modification creates distinct bonding profiles, impacting drug interactions and potentially cancer chemotherapy effectiveness.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Genetics

Background:

  • Cytosine C(5) methylation of CpG sequences is known to enhance mitomycin C adduction.
  • Previous studies showed varying results regarding the extent and uniformity of mitomycin C modification at the nucleotide level.

Purpose of the Study:

  • To determine the precise bonding profiles of mitomycin monoalkylation in methylated DNA fragments.
  • To investigate the influence of C(5) cytosine methylation on mitomycin C adduction at specific nucleotide sequences.

Main Methods:

  • Utilized two DNA restriction fragments with methylated CpG sequences.
  • Employed three mitomycin substrates: mitomycin C (1), 10-decarbamoylmitomycin C (2), and N-methyl-7-methoxyaziridinomitosene (3).
  • Applied UvrABC incision and lambda-exonuclease stop assays to quantify and qualitatively assess drug-DNA modification sites.

Main Results:

  • C(5) cytosine methylation significantly enhanced overall DNA modification by mitomycin C, increasing adduction 2.0 and 7.4 times in the studied fragments.
  • Guanine was the sole base modified, with increased adduction at select m5CpG* sites compared to CpG* sites, reaching up to two orders of magnitude difference.
  • The effect of methylation was less pronounced on guanine sites outside CpG dinucleotides, sometimes leading to diminished adduction.

Conclusions:

  • C(5) cytosine methylation creates distinct, sequence-selective bonding profiles for mitomycin C and related compounds.
  • Differences in guanine reactivity are attributed to DNA structural changes induced by C(5) cytosine methylation.
  • These findings have implications for understanding drug-DNA interactions and optimizing cancer chemotherapy strategies.