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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.
Abstract:
Histone deacetylases (HDACs) are a family of proteins whose main function is the removal of acetyl groups from lysine residues located on histone and non-histone substrates, which regulates gene transcription and other activities in cells. HDAC1 dysfunction has been implicated in cancer development and progression; thus, its inhibition has emerged as a new therapeutic strategy. Two additional metal binding sites (Site 1 and Site 2) in HDACs have been described that are primarily occupied by potassium ions, suggesting a possible structural role that affects HDAC activity. In this work, we explored the structural role of potassium ions in Site 1 and Site 2 and how they affect the interactions of compounds with high affinities for HDAC1 (AC1OCG0B, Chlamydocin, Dacinostat and Quisinostat) and SAHA (a pan-inhibitor) using molecular docking and molecular dynamics (MD) simulations in concert with a Molecular-Mechanics-Generalized-Born-Surface-Area (MMGBSA) approach. Four models were generated: one with a potassium ion (K+) in both sites (HDAC1k), a second with K+ only at site 1 (HDAC1ks1), a third with K+ only at site 2 (HDAC1ks2) and a fourth with no K+ (HDAC1wk). We found that the presence or absence of K+ not only impacted the structural flexibility of HDAC1, but also its molecular recognition, consistent with experimental findings. These results could therefore be useful for further structure-based drug design studies addressing new HDAC1 inhibitors.
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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