Rebai Redouane, Carmena-Bargueño Miguel, Toumi Mohammed Esseddik, Derardja Imene, Jasmin Luc, Pérez-Sánchez Horacio, Boudah Abdennacer
Department of Natural and Life Sciences, University Mohamed Khider of Biskra, BP 145 RP, 07000, Biskra, Algeria.
Laboratory of biotechnology, National Higher School of Biotechnology, Ville universitaire (university of Constantine 3) Ali Mendjeli, BP E66 25100, Constantine, Algeria.
Heliyon. 2024 Apr 26;10(9):e30287. doi: 10.1016/j.heliyon.2024.e30287. eCollection 2024 May 15.
Existing inhibitors of kynurenine-3-monooxygenase (KMO) have side effects and poorly cross the blood-brain barrier. Therefore, the discovery of new molecules targeting KMO isnecessary.This study aims to develop a novel therapeutic drug targeting KMO using computational methods and experimental validation of natural compounds.The results of our study show that the top four compounds, namely, 3'-Hydroxy-alpha-naphthoflavone exhibited the best docking scores with KMO (-10.0 kcal/mol), followed by 3'-Hydroxy-ss-naphthoflavone (-9.9 kcal/mol), genkwanin (-9.2 kcal/mol) and apigenin(-9.1 kcal/mol) respectively. Molecular dynamics was used to assess the stability of the primary target, KMO, and inhibitor complexes. We found stable interactions of 3'-Hydroxy-ss-naphthoflavone and apigenin with KMO up to 100 ns. Further, kinetic measurements showed that 3'-Hydroxy-alpha-naphthoflavone and 3'-Hydroxy-ss-naphthoflavone induce competitive inhibition with a good IC activity (15.85 ± 0.98 μM and 18.71 ± 0.78, respectively), while Genkwanin and Apigenin exhibit non-competitive inhibition mechanism (21.61 ± 0.97 μM and 24.14 ± 1.00 μM, respectively).Drug-likeness features and ADME analysis features also showed that the top four compounds could be used as potential candidates to replace the synthetic KMO inhibitor drugs with known side effects and poor brain-blood barrier penetration.
现有犬尿氨酸-3-单加氧酶(KMO)抑制剂具有副作用,且难以透过血脑屏障。因此,有必要发现靶向KMO的新分子。本研究旨在利用计算方法和天然化合物的实验验证来开发一种靶向KMO的新型治疗药物。我们的研究结果表明,排名前四位的化合物,即3'-羟基-α-萘黄酮与KMO的对接分数最佳(-10.0千卡/摩尔),其次是3'-羟基-β-萘黄酮(-9.9千卡/摩尔)、芫花素(-9.2千卡/摩尔)和芹菜素(-9.1千卡/摩尔)。分子动力学用于评估主要靶点KMO与抑制剂复合物的稳定性。我们发现3'-羟基-β-萘黄酮和芹菜素与KMO之间存在长达100纳秒的稳定相互作用。此外,动力学测量表明,3'-羟基-α-萘黄酮和3'-羟基-β-萘黄酮诱导竞争性抑制,具有良好的IC活性(分别为15.85±0.98微摩尔和18.71±0.78),而芫花素和芹菜素表现出非竞争性抑制机制(分别为21.61±0.97微摩尔和24.14±1.00微摩尔)。药物相似性特征和ADME分析特征还表明,排名前四位的化合物可作为潜在候选物,以替代具有已知副作用且血脑屏障穿透性差的合成KMO抑制剂药物。