Expanding the therapeutic landscape of PDE10A inhibition through alchemical absolute binding free energy calculations and in‐vitro evaluation

分子动力学 化学 伞式取样 计算化学 分子结合 分子 对接(动物) 小分子 体内 计算生物学 相互作用能 结合能 血浆蛋白结合 立体化学 结合位点 效力 分子模型 生物系统 虚拟筛选 铅化合物 药物发现 装订袋 组合化学 选择性 统计物理学 势能
作者
Bhanu Sharma,Rahul Singh,Ashish Kumar,Pralay Das,Rituraj Purohit
出处
期刊:Protein Science [Wiley]
卷期号:35 (2): e70472-e70472 被引量:12
标识
DOI:10.1002/pro.70472
摘要

In preclinical models, Phosphodiesterase-10A (PDE10A) inhibition has shown efficacy for Parkinson's and Huntington's diseases and is potentially a therapeutic approach for schizophrenia. In this study, computational approaches were employed to identify selective PDE10A inhibitors from a series of olefinated benzosuberene analogues. The molecular interactions and docking scores of the selected molecules were compared with three different co-crystal inhibitors of PDE10A. Molecular dynamics (MD) simulations confirmed the stability of the screened hit molecules with PDE10A, and AMKPD-52 was found to uniquely interact with the selectivity pocket residue Tyr-683. Further refinement using steered MD simulations and umbrella sampling simulations with a total simulation time of ~72 μs reinforced AMKPD-52 as the potential lead molecule. Absolute binding free energy calculations performed using multistate Bennett acceptance ratio method consistently ranked AMKPD-52 as the potential lead molecule for PDE10A inhibition. Experimental evaluation revealed an IC₅₀ value of 11.52 μM for AMKPD-52, confirming its inhibitory activity against PDE10A. Although the binding affinity and potency were modest compared to the reference inhibitor TAK-063, the natural origin and straightforward synthetic tractability of AMKPD-52 make it an attractive candidate for further medicinal chemistry optimization. These findings warrant in vivo validation to assess the therapeutic potential of AMKPD-52 in PDE10A-targeted interventions.
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