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Published on: August 17, 2019
Inhibitory selectivity to the AKR1B10 and aldose reductase (AR): insight from molecular dynamics simulations and free
Ping Lin1,2, Yuzhen Niu1,3
1Weifang University of Science and Technology Weifang 262700 China linping07@mails.ucas.ac.cn niuyzh12@lzu.edu.cn.
Abstract:
AKR1B10 is over-expressed in many cancer types and is related to chemotherapy resistance, which makes AKR1B10 a potential anti-cancer target. The high similarity of the protein structure between AKR1B10 and AR makes it difficult to develop highly selective inhibitors against AKR1B10. Understanding the interaction between AKR1B10 and inhibitors is very important for designing selective inhibitors of AKR1B10. In this study, Fidarestat, Zopolrestat, MK184 and MK204 bound to AKR1B10 and AR were used to investigate the selectivity mechanism. The results of MM/PBSA calculations show that van der Waals and electrostatic interaction provide the main contributions of the binding free energy. The hydrogen bonding between residues Y49 and H111 and inhibitors plays a pivotal role in contributing to the high inhibitory activity of AKR1B10 inhibitors. The π-π stacking interaction between residue W112 and inhibitor also plays a key role in the stability of inhibitors and AKR1B10, but W112 should keep its natural conformation to stabilize the inhibitor-AKR1B10 complex. Highly selective AKR1B10 inhibitors should have a bulky moiety like a phenyl group, which can change its binding with ABP in binding with AR and cannot change its binding with AKR1B10. The free energy decomposition shows that residues W21, V48, Y49, K78, W80, H111, R298 and V302 are beneficial to the stability of the inhibitor-AKR1B10. Our work will provide an important in silico basis for researchers to develop highly selective inhibitors of AKR1B10.
Insights
Targeting the over-expressed AKR1B10 protein in cancer is challenging due to its similarity to AR. This study reveals key interactions for designing selective AKR1B10 inhibitors, focusing on van der Waals, electrostatic, and hydrogen bonding.
Area of Science:
- Biochemistry
- Molecular Biology
- Computational Chemistry
Background:
- AKR1B10 is over-expressed in numerous cancers and linked to chemotherapy resistance, presenting a potential anti-cancer target.
- The structural similarity between AKR1B10 and Androgen Receptor (AR) hinders the development of selective AKR1B10 inhibitors.
Purpose of the Study:
- To investigate the molecular mechanisms underlying the selectivity of AKR1B10 inhibitors.
- To provide an in silico basis for designing highly selective AKR1B10 inhibitors.
Main Methods:
- Molecular mechanics with the Poisson-Boltzmann and Surface Area (MM/PBSA) calculations were employed.
- The binding of inhibitors (Fidarestat, Zopolrestat, MK184, MK204) to AKR1B10 and AR was analyzed.
Main Results:
- Van der Waals and electrostatic interactions are the primary drivers of binding free energy.
- Hydrogen bonding (Y49, H111) and pi-pi stacking (W112) are crucial for high inhibitory activity and complex stability.
- Specific residues (W21, V48, Y49, K78, W80, H111, R298, V302) contribute favorably to inhibitor-AKR1B10 complex stability.
Conclusions:
- Designing selective AKR1B10 inhibitors requires bulky moieties, like phenyl groups, to differentiate binding between AKR1B10 and AR.
- Understanding these interactions is vital for advancing the development of targeted cancer therapies.
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