Department of Chemistry, Durban University of Technology, P.O Box 1334, Durban, 4000, South Africa.
Chemistry Department, Faculty of Science, King Abdulaziz University, Jeddah, 21589, Saudi Arabia.
Sci Rep. 2020 Oct 27;10(1):18391. doi: 10.1038/s41598-020-75123-4.
The human sweet taste receptor (T1R2) monomer-a member of the G-protein coupled receptor family that detects a wide variety of chemically and structurally diverse sweet tasting molecules, is known to pose a significant threat to human health. Protein that lack crystal structure is a challenge in structure-based protein design. This study focused on the interaction of the T1R2 monomer with rebaudioside A (Reb-A), a steviol glycoside with potential use as a natural sweetener using in-silico and biosensing methods. Herein, homology modelling, docking studies, and molecular dynamics simulations were applied to elucidate the interaction between Reb-A and the T1R2 monomer. In addition, the electrochemical sensing of the immobilised T1R2-Reb-A complex with zinc oxide nanoparticles (ZnONPs) and graphene oxide (GO) were assessed by testing the performance of multiwalled carbon nanotube (MWCNT) as an adsorbent experimentally. Results indicate a strong interaction between Reb-A and the T1R2 receptor, revealing the stabilizing interaction of the amino acids with the Reb-A by hydrogen bonds with the hydroxyl groups of the glucose moieties, along with a significant amount of hydrophobic interactions. Moreover, the presence of the MWCNT as an anchor confirms the adsorption strength of the T1R2-Reb-A complex onto the GO nanocomposite and supported with electrochemical measurements. Overall, this study could serve as a cornerstone in the development of electrochemical immunosensor for the detection of Reb-A, with applications in the food industry.
人类甜味受体(T1R2)单体是一种 G 蛋白偶联受体家族的成员,能够检测到各种化学和结构上多样化的甜味分子,已知对人类健康构成重大威胁。缺乏晶体结构的蛋白质是基于结构的蛋白质设计中的一个挑战。本研究集中于 T1R2 单体与甜菊糖苷 Reb-A(一种具有作为天然甜味剂潜力的 Steviol 糖苷)之间的相互作用,使用了计算和生物传感方法。在此,应用同源建模、对接研究和分子动力学模拟来阐明 Reb-A 与 T1R2 单体之间的相互作用。此外,通过实验测试多壁碳纳米管(MWCNT)作为吸附剂的性能,评估了固定化 T1R2-Reb-A 复合物与氧化锌纳米粒子(ZnONPs)和氧化石墨烯(GO)的电化学传感性能。结果表明 Reb-A 与 T1R2 受体之间存在强烈相互作用,揭示了氨基酸与 Reb-A 之间通过氢键与葡萄糖部分的羟基以及大量疏水相互作用的稳定相互作用。此外,MWCNT 的存在作为锚定物证实了 T1R2-Reb-A 复合物在 GO 纳米复合材料上的吸附强度,并得到了电化学测量的支持。总的来说,这项研究可以作为开发用于检测 Reb-A 的电化学免疫传感器的基础,在食品工业中有应用前景。