Insights into structural features of HDAC1 and its selectivity inhibition elucidated by Molecular dynamic simulation

Yudibeth Sixto-López1, Martiniano Bello1, José Correa-Basurto1

  • 1a Laboratorio de Modelado Molecular, Bioinformática y Diseño de fármacos, Sección de Estudios de Posgrado e Investigación , Escuela Superior de Medicina, Instituto Politécnico Nacional , Mexico City 11340 , Mexico.

Insights

Potassium ions in HDAC1 influence its structure and how drugs bind, impacting cancer therapy development. Understanding these interactions aids in designing new HDAC1 inhibitors.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • Histone deacetylases (HDACs) regulate gene transcription, and HDAC1 dysfunction is linked to cancer.
  • HDACs possess metal binding sites (Site 1 and Site 2) that may influence activity.
  • HDAC1 inhibitors are a promising cancer therapeutic strategy.

Purpose of the Study:

  • To investigate the structural role of potassium ions in HDAC1's metal binding sites (Site 1 and Site 2).
  • To determine how potassium ions affect the binding of known HDAC1 inhibitors (AC1OCG0B, Chlamydocin, Dacinostat, Quisinostat, SAHA).

Main Methods:

  • Computational modeling including molecular docking and molecular dynamics (MD) simulations.
  • Utilized Molecular Mechanics-Generalized Born Surface Area (MMGBSA) for binding energy calculations.
  • Generated four HDAC1 models varying in potassium ion occupancy at Site 1 and Site 2.

Main Results:

  • Potassium ion presence/absence significantly altered HDAC1 structural flexibility.
  • The occupancy of potassium ions modulated the molecular recognition and binding of HDAC1 inhibitors.
  • Observed effects align with existing experimental findings.

Conclusions:

  • Potassium ions play a crucial role in modulating HDAC1 structure and inhibitor interactions.
  • These findings provide valuable insights for structure-based drug design of novel HDAC1 inhibitors.
  • Understanding potassium ion roles can enhance the efficacy of HDAC1-targeted cancer therapies.

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