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芳基脲基奥酮类化合物:合成、体外α-葡萄糖苷酶及α-淀粉酶抑制活性

Arylureidoaurones: Synthesis, in vitro α-glucosidase, and α-amylase inhibition activity.

作者信息

Kazempour-Dizaji Mohammad, Mojtabavi Somayeh, Sadri Arash, Ghanbarpour Araz, Faramarzi Mohammad Ali, Navidpour Latifeh

机构信息

Department of Medicinal Chemistry, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran 14176, Iran.

Department of Pharmaceutical Biotechnology, Faculty of Pharmacy, Tehran University of Medical Sciences, P.O. Box 14155-6451, Tehran 14176, Iran.

出版信息

Bioorg Chem. 2023 Oct;139:106709. doi: 10.1016/j.bioorg.2023.106709. Epub 2023 Jul 1.

Abstract

Because of the colossal global burden of diabetes, there is an urgent need for more effective and safer drugs. We designed and synthesized a new series of aurone derivatives possessing phenylureido or bis-phenylureido moieties as α-glucosidase and α-amylase inhibitors. Most of the synthesized phenylureidoaurones have demonstrated superior inhibition activities (ICs of 9.6-339.9 μM) against α-glucosidase relative to acarbose (IC = 750.0 μM) as the reference drug. Substitution of aurone analogues with two phenylureido substituents at the 5-position of the benzofuranone moiety and the 3' or 4' positions of the 2-phenyl ring resulted in compounds with almost 120-180 times more potent inhibitory activities than acarbose. The aurone analogue possessing two phenylureido substitutions at 5 and 4' positions (13) showed the highest inhibition activity with an IC of 4.2 ± 0.1 μM. Kinetic studies suggested their inhibition mode to be competitive. We also investigated the binding mode of the most potent compounds using the consensually docked 4D-QSAR methodology. Furthermore, these analogues showed weak-to-moderate non-competitive inhibitory activity against α-amylase. 5-Methyl substituted aurone with 4'-phenylureido moiety (6e) demonstrated the highest inhibition activity on α-amylase with an IC of 142.0 ± 1.6 μM relative to acarbose (IC = 108 ± 1.2 μM). Our computational studies suggested that these analogues interact with a hydrophilic allosteric site in α-amylase, located far from the enzyme active site at the N-terminal.

摘要

由于糖尿病在全球造成的巨大负担,迫切需要更有效、更安全的药物。我们设计并合成了一系列新的奥酮衍生物,这些衍生物含有苯脲基或双苯脲基部分,作为α-葡萄糖苷酶和α-淀粉酶抑制剂。相对于作为参考药物的阿卡波糖(IC = 750.0 μM),大多数合成的苯脲基奥酮对α-葡萄糖苷酶表现出优异的抑制活性(IC为9.6 - 339.9 μM)。在苯并呋喃酮部分的5位以及2-苯基环的3'或4'位用两个苯脲基取代基取代奥酮类似物,得到的化合物的抑制活性比阿卡波糖强近120 - 180倍。在5位和4'位具有两个苯脲基取代的奥酮类似物(13)表现出最高的抑制活性,IC为4.2 ± 0.1 μM。动力学研究表明它们的抑制模式为竞争性。我们还使用经共识对接的4D-QSAR方法研究了最有效化合物的结合模式。此外,这些类似物对α-淀粉酶表现出弱至中等的非竞争性抑制活性。具有4'-苯脲基部分的5-甲基取代奥酮(6e)对α-淀粉酶表现出最高的抑制活性,相对于阿卡波糖(IC = 108 ± 1.2 μM),IC为142.0 ± 1.6 μM。我们的计算研究表明,这些类似物与α-淀粉酶中的一个亲水性变构位点相互作用,该位点位于N端远离酶活性位点的位置。

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