Exploring the mechanism of interaction of glipizide with DNA: Combined in vitro and bioinformatics approach

Int J Biol Macromol. 2024 May;267(Pt 1):131573. doi: 10.1016/j.ijbiomac.2024.131573. Epub 2024 Apr 15.

Abstract

DNA, vital for biological processes, encodes hereditary data for protein synthesis, shaping cell structure and function. Since revealing its structure, DNA has become a target for various therapeutically vital molecules, spanning antidiabetic to anticancer drugs. These agents engage with DNA-associated proteins, DNA-RNA hybrids, or bind directly to the DNA helix, triggering diverse downstream effects. These interactions disrupt vital enzymes and proteins essential for maintaining cell structure and function. Analysing drug-DNA interactions has significantly advanced our understanding of drug mechanisms. Glipizide, an antidiabetic drug, is known to cause DNA damage in adipocytes. However, its extract mechanism of DNA interaction is unknown. This study delves into the interaction between glipizide and DNA utilizing various biophysical tools and computational technique to gain insights into the interaction mechanism. Analysis of UV-visible and fluorescence data reveals the formation of complex between DNA and glipizide. The binding affinity of glipizide to DNA was of moderate strength. Examination of thermodynamic parameters at different temperatures suggests that the binding was entropically spontaneous and energetically favourable. Various experiments such as thermal melting assays, viscosity measurement, and dye displacement assays confirmed the minor grove nature of binding of glipizide with DNA. Molecular dynamics studies confirmed the glipizide forms stable complex with DNA when simulated by mimicking the physiological conditions. The binding was mainly favoured by hydrogen bonds and glipizide slightly reduced nucleotide fluctuations of DNA. The study deciphers the mechanism of interaction of glipizide with DNA at molecular levels.

Keywords: Binding; DNA; DNA grove binding; Fluorescence spectroscopy; Glipizide; Molecular docking; Molecular dynamics simulations.

MeSH terms

  • Computational Biology / methods
  • DNA* / chemistry
  • DNA* / metabolism
  • Glipizide* / chemistry
  • Glipizide* / pharmacology
  • Hypoglycemic Agents / chemistry
  • Hypoglycemic Agents / pharmacology
  • Molecular Docking Simulation
  • Molecular Dynamics Simulation*
  • Nucleic Acid Conformation
  • Thermodynamics*

Substances

  • Glipizide
  • DNA
  • Hypoglycemic Agents