Decoding complexity in biomolecular recognition of DNA i-motifs with microarrays

Kamyar Yazdani1, Srinath Seshadri1, Desiree Tillo2

  • 1Chemical Biology Laboratory, National Cancer Institute, 1050 Boyle St., Frederick, MD 21702, USA.

Nucleic Acids Research
|November 14, 2023
PubMed

Insights

This study reveals how proteins and small molecules bind to DNA i-motifs (iMs). hnRNP K protein selectively recognizes diverse iM sequences, suggesting a role in gene regulation.

Area of Science:

  • Genomics
  • Molecular Biology
  • Biochemistry

Background:

  • DNA i-motifs (iMs) are non-canonical C-rich structures found in the genome.
  • Understanding iM recognition by proteins and small molecules is limited.

Purpose of the Study:

  • To comprehensively investigate the binding profiles of biomolecules to genomic iM sequences.
  • To identify specific recognition patterns for iM-binding proteins and small molecules.

Main Methods:

  • Design of a DNA microarray with 10976 genomic iM sequences.
  • Screening binding profiles of four iM-binding proteins and mitoxantrone using the iMab antibody.
  • Optimization of microarray screening conditions (pH 6.5, 5% BSA buffer).

Main Results:

  • hnRNP K broadly recognizes diverse iMs, favoring specific cytosine repeat lengths and loop sizes.
  • Array binding data for hnRNP K correlated with public ChIP-Seq datasets.
  • Other proteins showed weaker binding or preference for G-quadruplex (G4) sequences.
  • Mitoxantrone binds both iMs and G4s, indicating an intercalation mechanism.

Conclusions:

  • hnRNP K may regulate gene expression via iMs in vivo.
  • hnRNP A1 and ASF/SF2 exhibit more selective binding preferences.
  • The DNA microarray approach provides a comprehensive method for studying iM recognition.