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Updated: May 26, 2025

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Published on: May 9, 2025
Molecular mechanism of interactions of SPIN1 with novel inhibitors through molecular docking and molecular dynamics
1College of Chemistry and Chemical Engineering, Qiqihar University, Qiqihar, P. R. China.
Abstract:
Methyllysine reading protein Spindlin 1 (SPIN1) plays a crucial role in histone post-translational modifications and serves as an effective target for the treatment of various malignant tumours. Although several inhibitors targeting SPIN1 expression have been identified, the atomic-level interactions between SPIN1 and inhibitors remain unclear. In this study, six potential SPIN1 inhibitors A366, EML631, MS31, MS8535, vinspinln, and XY49-92B were selected for molecular docking with SPIN1. Conformational changes in SPIN1 induced by these inhibitors, as well as their interactions, were investigated using molecular dynamics simulation (MD) and energy prediction methods including molecular mechanics generalized Born surface area (MM-GBSA) and solvation interaction energy (SIE). The findings indicate that the binding pockets within domain II, specifically Phe141, Trp151, Tyr170, and Tyr177, engage in cation-π interactions with these inhibitors, while also contributing to van der Waals hydrophobic interactions of varying strengths. These van der Waals hydrophobic interactions are critical for their binding affinity, while electrostatic interactions are significantly counterbalanced by polar solvation effects. In addition, through virtual screening and molecular docking, a new lead compound CXY49 was found presenting an effective binding to SPIN1. The structural and energetic changes identified in this study provide valuable insights for the development of new SPIN1 inhibitors.
Insights
Spindlin 1 (SPIN1) inhibitors show critical binding via cation-π and hydrophobic interactions in domain II. New lead compound CXY49 identified, aiding future SPIN1 inhibitor development for cancer treatment.
Area of Science:
- Biochemistry
- Structural Biology
- Medicinal Chemistry
Background:
- Spindlin 1 (SPIN1) is a methyllysine reader protein vital in histone modifications.
- SPIN1 is a promising therapeutic target for various cancers.
Purpose of the Study:
- To elucidate atomic-level interactions between SPIN1 and its inhibitors.
- To identify novel SPIN1 inhibitors for cancer therapy.
Main Methods:
- Molecular docking of six SPIN1 inhibitors with SPIN1.
- Molecular dynamics simulations (MD) to analyze conformational changes.
- MM-GBSA and SIE methods for energy prediction.
Main Results:
- Key interactions identified in SPIN1 domain II binding pockets (Phe141, Trp151, Tyr170, Tyr177) include cation-π and van der Waals hydrophobic forces.
- Hydrophobic interactions are crucial for binding affinity; electrostatic interactions are counterbalanced by solvation effects.
- Virtual screening identified CXY49 as a novel lead compound with effective SPIN1 binding.
Conclusions:
- Detailed structural and energetic insights into SPIN1-inhibitor interactions.
- Findings facilitate the rational design of more effective SPIN1-targeted cancer therapeutics.
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