Natural Science Laboratory, Division of Medicinal and Pharmaceutical Chemistry, Department of Pharmaceutical Technology, Jadavpur University, Kolkata, India.
Epigenetic Research Laboratory, Department of Pharmacy, Birla Institute of Technology and Science-Pilani, Hyderabad, India.
SAR QSAR Environ Res. 2024 Aug;35(8):665-692. doi: 10.1080/1062936X.2024.2389822. Epub 2024 Aug 28.
MMP-2 overexpression is strongly related to several diseases including cancer. However, none of the MMP-2 inhibitors have been marketed as drug candidates due to various adverse effects. Here, a set of sulphonyl pyrrolidines was subjected to validation of molecular modelling followed by binding mode analysis to explore the crucial structural features required for the discovery of promising MMP-2 inhibitors. This study revealed the importance of hydroxamate as a potential zinc-binding group compared to the esters. Importantly, hydrophobic and sterical substituents were found favourable at the terminal aryl moiety attached to the sulphonyl group. The binding interaction study revealed that the S1' pocket of MMP-2 similar to '' allows the aryl moiety for proper fitting and interaction at the active site to execute potential MMP-2 inhibition. Again, the sulphonyl pyrrolidine moiety can be a good fragment necessary for MMP-2 inhibition. Moreover, some novel MMP-2 inhibitors were also reported. They showed the significance of the 3 position substitution of the pyrrolidine ring to produce interaction inside S2' pocket. The current study can assist in the design and development of potential MMP-2 inhibitors as effective drug candidates for the management of several diseases including cancers in the future.
MMP-2 的过表达与包括癌症在内的多种疾病密切相关。然而,由于各种不良反应,没有一种 MMP-2 抑制剂被作为候选药物推向市场。在这里,一组磺酰基吡咯烷类化合物经过分子建模验证,并进行了结合模式分析,以探索发现有前途的 MMP-2 抑制剂所需的关键结构特征。这项研究表明,与酯基相比,羟肟酸作为潜在锌结合基团的重要性。重要的是,在与磺酰基相连的末端芳基部分发现了疏水性和立体取代基是有利的。结合相互作用研究表明,MMP-2 的 S1' 口袋类似于 '',允许芳基部分在活性位点适当贴合和相互作用,以执行潜在的 MMP-2 抑制。此外,磺酰基吡咯烷部分也可以是 MMP-2 抑制所必需的良好片段。此外,还报道了一些新型 MMP-2 抑制剂。它们表明了吡咯烷环 3 位取代的重要性,以在 S2' 口袋内产生相互作用。本研究可以为未来设计和开发作为有效候选药物的潜在 MMP-2 抑制剂提供帮助,以治疗包括癌症在内的多种疾病。