College of Biological and Environmental Sciences, Zhejiang Wanli University, Ningbo, People's Republic of China.
Genome Editing Research Center, Korea Research Institute of Bioscience and Biotechnology (KRIBB), Gwahak-ro, Yuseong-gu, Daejeon, Korea.
J Biomol Struct Dyn. 2020 Aug;38(12):3496-3503. doi: 10.1080/07391102.2019.1659858. Epub 2019 Sep 9.
The inhibition of α-glucosidase is used as a key clinical approach to treat type 2 diabetes mellitus and thus, we assessed the inhibitory effect of α-ketoglutaric acid (AKG) on α-glucosidase with both an enzyme kinetic assay and computational simulations. AKG bound to the active site and interacted with several key residues, including ASP68, PHE157, PHE177, PHE311, ARG312, TYR313, ASN412, ILE434 and ARG439, as detected by protein-ligand docking and molecular dynamics simulations. Subsequently, we confirmed the action of AKG on α-glucosidase as mixed-type inhibition with reversible and rapid binding. The relevant kinetic parameter IC was measured (IC = 1.738 ± 0.041 mM), and the dissociation constant was determined ( = 0.46 ± 0.04 mM). Regarding the relationship between structure and activity, a high AKG concentration induced the slight modulation of the shape of the active site, as monitored by hydrophobic exposure. This tertiary conformational change was linked to AKG inhibition and mostly involved regional changes in the active site. Our study provides insight into the functional role of AKG due to its structural property of a hydroxyphenyl ring that interacts with the active site. We suggest that similar hydroxyphenyl ring-containing compounds targeting key residues in the active site might be potential α-glucosidase inhibitors. AbbreviationsAKGalpha-ketoglutaric acidpNPG4-nitrophenyl-α-d-glucopyranosideANS1-anilinonaphthalene-8-sulfonateMDmolecular dynamics.Communicated by Ramaswamy H. Sarma.
α-葡萄糖苷酶的抑制作用被用作治疗 2 型糖尿病的主要临床方法,因此,我们使用酶动力学分析和计算模拟评估了α-酮戊二酸(AKG)对α-葡萄糖苷酶的抑制作用。AKG 与活性位点结合,并与几个关键残基相互作用,包括 ASP68、PHE157、PHE177、PHE311、ARG312、TYR313、ASN412、ILE434 和 ARG439,如蛋白配体对接和分子动力学模拟所检测到的。随后,我们通过实验证实了 AKG 对α-葡萄糖苷酶的作用是混合抑制,具有可逆和快速结合的特点。相关的动力学参数 IC 被测量(IC = 1.738 ± 0.041 mM),解离常数被确定( = 0.46 ± 0.04 mM)。关于结构与活性的关系,高浓度的 AKG 诱导活性位点形状的轻微调节,这可以通过疏水性暴露来监测。这种三级构象变化与 AKG 的抑制有关,主要涉及活性位点的区域变化。我们的研究提供了对 AKG 功能作用的深入了解,因为其羟苯基环的结构特性与活性位点相互作用。我们建议,针对活性位点关键残基的类似含羟苯基环的化合物可能是潜在的α-葡萄糖苷酶抑制剂。缩写 AKGα-酮戊二酸 pNPG4-硝基苯-α-d-吡喃葡萄糖苷 ANS1-苯胺基萘-8-磺酸盐 MD 分子动力学。由 Ramaswamy H. Sarma 传达。