Bülbül Emre F, Robaa Dina, Sun Ping, Mahmoudi Fereshteh, Melesina Jelena, Zessin Matthes, Schutkowski Mike, Sippl Wolfgang
Department of Medicinal Chemistry, Institute of Pharmacy, Martin-Luther University of Halle-Wittenberg, 06120 Halle (Saale), Germany.
Department of Enzymology, Institute of Biotechnology, Martin-Luther University of Halle-Wittenberg, 06120 Halle (Saale), Germany.
Pharmaceuticals (Basel). 2023 Jul 6;16(7):968. doi: 10.3390/ph16070968.
Histone deacetylases (HDAC) represent promising epigenetic targets for several diseases including different cancer types. The HDAC inhibitors approved to date are pan-HDAC inhibitors and most show a poor selectivity profile, side effects, and in particular hydroxamic-acid-based inhibitors lack good pharmacokinetic profiles. Therefore, the development of isoform-selective non-hydroxamic acid HDAC inhibitors is a highly regarded field in medicinal chemistry. In this study, we analyzed different ligand-based and structure-based drug design techniques to predict the binding mode and inhibitory activity of recently developed alkylhydrazide HDAC inhibitors. Alkylhydrazides have recently attracted more attention as they have shown promising effects in various cancer cell lines. In this work, pharmacophore models and atom-based quantitative structure-activity relationship (QSAR) models were generated and evaluated. The binding mode of the studied compounds was determined using molecular docking as well as molecular dynamics simulations and compared with known crystal structures. Calculated free energies of binding were also considered to generate QSAR models. The created models show a good explanation of in vitro data and were used to develop novel HDAC3 inhibitors.
组蛋白去乙酰化酶(HDAC)是包括不同癌症类型在内的多种疾病有前景的表观遗传靶点。迄今获批的HDAC抑制剂均为泛HDAC抑制剂,且大多数选择性不佳、存在副作用,尤其是基于异羟肟酸的抑制剂药代动力学特性欠佳。因此,开发亚型选择性非异羟肟酸HDAC抑制剂是药物化学中备受关注的领域。在本研究中,我们分析了不同的基于配体和基于结构的药物设计技术,以预测最近开发的烷基酰肼HDAC抑制剂的结合模式和抑制活性。烷基酰肼最近受到更多关注,因为它们在各种癌细胞系中显示出有前景的效果。在这项工作中,生成并评估了药效团模型和基于原子的定量构效关系(QSAR)模型。使用分子对接以及分子动力学模拟确定了所研究化合物的结合模式,并与已知晶体结构进行比较。计算得到的结合自由能也被用于生成QSAR模型。所创建的模型对体外数据有很好的解释,并用于开发新型HDAC3抑制剂。