Molecular chemistry and Natural Substances Laboratory, Faculty of Science, University Moulay Ismail, Meknes, Morocco.
Chemistry- Biologie Applied to the Environment URL CNRT 13, Department of Chemistry, Faculty of Science, Moulay Ismail University, Meknes, Morocco.
J Biomol Struct Dyn. 2024 Oct;42(17):9201-9219. doi: 10.1080/07391102.2023.2250460. Epub 2023 Sep 1.
Acute myeloid leukemia, a serious condition affecting stem cells, drives uncontrollable myeloblast proliferation, leading to accumulation. Extensive research seeks rapid, effective chemotherapeutics. A potential option is a BRD4 inhibitor, known for suppressing cell proliferation. Sulfonamide derivatives probed essential structural elements for potent BRD4 inhibitors. To achieve this goal, we employed 3D-QSAR molecular modeling techniques, including CoMFA, CoMSIA, and HQSAR models, along with molecular docking and molecular dynamics simulations. The validation of the 2D/3D QSAR models, both internally and externally, underscores their robustness and reliability. The contour plots derived from CoMFA, CoMSIA, and HQSAR analyses played a pivotal role in shaping the design of effective BRD4 inhibitors. Importantly, our findings highlight the advantageous impact of incorporating bulkier substituents on the pyridinone ring and hydrophobic/electrostatic substituents on the methoxy-substituted phenyl ring, enhancing interactions with the BRD4 target. The interaction mode of the new compounds with the BRD4 receptor (PDB ID: 4BJX) was investigated using molecular docking simulations, revealing favorable binding energies, supported by the formation of hydrogen and hydrophobic bonds with key protein residues. Moreover, these novel inhibitors exhibited good oral bioavailability and demonstrated non-toxic properties based on ADMET analysis. Furthermore, the newly designed compounds along with the most active one from series 58, underwent a molecular dynamics simulation to analyze their behavior. The simulation provided additional evidence to support the molecular docking results, confirming the sustained stability of the analyzed molecules over the trajectory. This outcome could serve as a valuable reference for designing and developing novel and effective BRD4 inhibitors.Communicated by Ramaswamy H. Sarma.
急性髓细胞白血病是一种严重影响干细胞的疾病,导致无法控制的髓母细胞增殖和积累。广泛的研究旨在寻找快速有效的化疗药物。一种潜在的选择是 BRD4 抑制剂,它已被证明可抑制细胞增殖。磺胺衍生物探索了强效 BRD4 抑制剂的必需结构要素。为了实现这一目标,我们采用了 3D-QSAR 分子建模技术,包括 CoMFA、CoMSIA 和 HQSAR 模型,以及分子对接和分子动力学模拟。2D/3D QSAR 模型的内部和外部验证突出了它们的稳健性和可靠性。CoMFA、CoMSIA 和 HQSAR 分析得出的等高线图在设计有效的 BRD4 抑制剂方面发挥了关键作用。重要的是,我们的研究结果强调了在吡啶酮环上引入较大取代基和在甲氧基取代的苯环上引入疏水性/静电取代基对增强与 BRD4 靶标的相互作用的有利影响。使用分子对接模拟研究了新化合物与 BRD4 受体(PDB ID:4BJX)的相互作用模式,揭示了有利的结合能,这得益于与关键蛋白残基形成氢键和疏水键。此外,这些新抑制剂表现出良好的口服生物利用度,并根据 ADMET 分析显示出非毒性特性。此外,新设计的化合物以及系列 58 中最活跃的化合物进行了分子动力学模拟,以分析它们的行为。模拟提供了额外的证据支持分子对接结果,证实了分析分子在轨迹上的持续稳定性。这一结果可以为设计和开发新型有效的 BRD4 抑制剂提供有价值的参考。由 Ramaswamy H. Sarma 传达。