Department of Pharmaceutical Chemistry, School of Pharmacy, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece.
Department of Medical Laboratories, School of Health and Care Professions, Alexander Technological Educational Institute of Thessaloniki, 54700 Thessaloniki, Greece.
Molecules. 2018 Jul 3;23(7):1621. doi: 10.3390/molecules23071621.
5-LOX inhibition is among the desired characteristics of anti-inflammatory drugs, while 15-LOX has also been considered as a drug target. Similarity in inhibition behavior between soybean LOX-1 and human 5-LOX has been observed and soybean LOX (sLOX) type 1b has been used for the evaluation of LOX inhibition in drug screening for years. After prediction of LOX inhibition by PASS and docking as well as toxicity by PROTOX and ToxPredict sixteen ()--(thiazol-2-yl)-6-(4-hydroxy-6-methoxy-7-methyl-3-oxo-1,3-dihydroisobenzofuran-5-yl)-4-methylhex-4-enamide derivatives with lengths varying from about 15⁻20 Å were evaluated in vitro for LOX inhibitory action using the soybean lipoxygenase sLOX 1b. Docking analysis was performed using soybean LOX L-1 (1YGE), soybean LOX-3 (1JNQ), human 5-LOX (3O8Y and 3V99) and mammalian 15-LOX (1LOX) structures. Different dimensions of target center and docking boxes and a cavity prediction algorithm were used. The compounds exhibited inhibitory action between 2.5 μΜ and 165 μΜ. Substituents with an electronegative atom at two-bond proximity to position 4 of the thiazole led to enhanced activity. Docking results indicated that the LOX structures 1JNQ, 3V99 and 1LOX can effectively be used for estimation of LOX inhibition and amino acid interactions of these compounds.
5-LOX 抑制是抗炎药物的理想特性之一,而 15-LOX 也被认为是药物靶点。已经观察到大豆 LOX-1 和人 5-LOX 之间抑制行为的相似性,并且多年来一直使用大豆 LOX(sLOX)1b 来评估药物筛选中 LOX 抑制作用。在通过 PASS 预测和对接进行 LOX 抑制以及通过 PROTOX 和 ToxPredict 进行毒性预测之后,使用十六个()-(噻唑-2-基)-6-(4-羟基-6-甲氧基-7-甲基-3-氧代-1,3-二氢异苯并呋喃-5-基)-4-甲基己-4-烯酰胺衍生物评估了长度约为 15-20 Å 的体外 LOX 抑制作用。使用大豆脂氧合酶 sLOX 1b 进行对接分析。使用大豆 LOX L-1(1YGE),大豆 LOX-3(1JNQ),人 5-LOX(3O8Y 和 3V99)和哺乳动物 15-LOX(1LOX)结构进行了对接分析。使用了不同尺寸的靶心和对接框以及腔预测算法。这些化合物的抑制活性在 2.5 μM 和 165 μM 之间。在噻唑的 4 位附近的两个键上具有电负性原子的取代基可增强活性。对接结果表明,LOX 结构 1JNQ、3V99 和 1LOX 可有效地用于估计 LOX 抑制作用以及这些化合物的氨基酸相互作用。