Department of Chemistry, Quaid-i-Azam University, Islamabad 45320, Pakistan; Department of Chemistry, University of Gujrat, Rawalpindi Sub-campus, Satellite Town, Rawalpindi, Pakistan.
School of Chemistry, The University of Manchester, Oxford Road, Manchester M13 9PL, United Kingdom; Manchester Institute of Biotechnology, The University of Manchester, 131 Princess Street, Manchester M1 7DN, United Kingdom.
Bioorg Med Chem. 2019 Nov 15;27(22):115123. doi: 10.1016/j.bmc.2019.115123. Epub 2019 Sep 16.
Although a diverse range of chemical entities offering striking therapeutic potential against urease enzyme has been reported, the key challenges (toxicity and safety) associated with these inhibitors create a large unmet medical need to unveil new, potent and safe inhibitors of urease enzyme. In this pursuit, the present study demonstrates the successful synthesis of carbazole-chalcone hybrids (4a-n) in good yields. The evaluation of the preliminary in vitro biological results showed that selected members of the investigated library of hybrid compounds possess excellent urease inhibitory efficacy. In particular, compounds 4c and 4k were the most potent inhibitors with lowest IC values of 8.93 ± 0.21 and 6.88 ± 0.42 μM, respectively. Molecular docking analysis of the most potent inhibitor 4k suggests that the compound is fitted neatly at the active site interface and mediates interaction with both nickel atoms present in the active site. Several other obvious interactions including metal-carbonyl contact, hydrogen bonding and hydrophobic interactions were also observed, playing a crucial part in the stabilization of 4k in the active site of urease.
尽管已经报道了多种具有显著治疗潜力的针对脲酶的化学实体,但这些抑制剂所带来的关键挑战(毒性和安全性),使得人们迫切需要开发新型、有效且安全的脲酶抑制剂。在这一探索过程中,本研究成功地以较高产率合成了咔唑-查尔酮杂合体(4a-n)。初步体外生物学结果评估表明,在所研究的杂合体化合物库中,部分成员具有优异的脲酶抑制活性。特别是化合物 4c 和 4k 是最有效的抑制剂,其 IC 值最低,分别为 8.93 ± 0.21 和 6.88 ± 0.42 μM。对最有效的抑制剂 4k 的分子对接分析表明,该化合物恰好位于活性位点界面上,并介导与活性位点中存在的两个镍原子相互作用。还观察到其他几个明显的相互作用,包括金属-羰基接触、氢键和疏水相互作用,它们在 4k 稳定存在于脲酶的活性位点中发挥了关键作用。