Looking for Waldo: a potential thermodynamic signature to DNA damage

Barry Gold1, Michael P Stone, Luis A Marky

  • 1Department of Pharmaceutical Sciences, University of Pittsburgh , Pittsburgh, Pennsylvania 15261, United States.

Insights

DNA damage alters its structure, stability, and ion/water interactions. Proteins may sense these changes via a "thermodynamic signature," distinguishing damaged DNA from normal DNA for repair.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • DNA conformation depends on nucleic acids, water, and ions.
  • Covalent DNA damage alters structure, stability, and ion/water dynamics.
  • Proteins efficiently repair DNA damage, recognizing lesions amidst normal DNA.

Purpose of the Study:

  • To investigate the impact of DNA modifications on DNA structure, stability, and ion/water uptake.
  • To explore how these changes are sensed by DNA repair proteins.
  • To understand how DNA lesion location and nature influence thermodynamics and structure.

Main Methods:

  • Analysis of DNA modifications in major and minor grooves.
  • Inclusion of in vivo lesions (e.g., oxidized bases) and synthetic nucleobases.
  • Combined structural and thermodynamic studies.

Main Results:

  • Major groove N7-position modification (common in alkylation) is enthalpically destabilizing.
  • Tethering cationic charge in the major groove is enthalpically stabilizing.
  • DNA lesions possess a distinct 'thermodynamic signature'.

Conclusions:

  • DNA modifications significantly impact DNA dynamics and base-environment interactions.
  • A 'thermodynamic signature' aids in differentiating damaged DNA from canonical DNA.
  • Further thermodynamic and kinetic factors differentiate specific lesion-enzyme recognition.