Ayinla Zainab Adenike, Ademakinwa Adedeji Nelson, Agboola Femi Kayode
Department of Biochemistry and Molecular Biology, Obafemi Awolowo University, Ile-Ife, Nigeria.
Department of Physical and Chemical Sciences, Elizade University, Ilara-Mokin, Nigeria.
J Biomol Struct Dyn. 2023 Sep-Oct;41(15):7235-7247. doi: 10.1080/07391102.2022.2119279. Epub 2022 Sep 9.
Elucidation of lipase-substrate interactions will guide the proper industrial use and applicability of the enzyme. The aim of this study was to predict the 3 D structure of ZAC3 (ZAC3) lipase, study its interactions with some natural substrates and evaluate the feasibility of fatty acid methyl esters (FAME) production by the immobilized lipase. Protein identification of ZAC3 lipase was carried out using LC-MS/MS. The 3 D structure of the lipase was built using homology modelling and natural substrates such as tributyrin, tripalmitin and triolein were docked to the optimized 3 D model for investigation of enzyme-ligand interactions. ZAC3 lipase, immobilized by adsorption on Lewatit VP OC 1600 was applied in the synthesis of fatty acid methyl esters (FAME). From the phylogenetic analysis, it was observed that ZAC3 lipase was closely related (48%) to lipase (Q7M4U7). The predicted 3 D model was validated using the SWISS model validation server. Ramachandran and ERRAT plots were used to assess the amino acid environment and overall quality of the model. From the docking studies, the values of the binding energies obtained for tributyrin, tripalmitin and triolein were - 5.37, -5.27 and -5.77 respectively. At an enzyme:immobilization support ratio of 50 mg/g, transesterification reaction duration of 18 h and a temperature of 40 oC, the conversion reached above 80%. The molecular docking studies provided information on the interaction/modifications between the ZAC3 lipase and triacylglycerols that can be exploited for numerous applications. The immobilized lipase could serve in hydro-esterification reactions adaptable for biodiesel production.Communicated by Ramaswamy H. Sarma.
阐明脂肪酶与底物的相互作用将指导该酶在工业上的合理使用和适用性。本研究的目的是预测ZAC3脂肪酶的三维结构,研究其与一些天然底物的相互作用,并评估固定化脂肪酶生产脂肪酸甲酯(FAME)的可行性。使用液相色谱-串联质谱法对ZAC3脂肪酶进行蛋白质鉴定。利用同源建模构建脂肪酶的三维结构,并将三丁酸甘油酯、三棕榈酸甘油酯和三油酸甘油酯等天然底物对接至优化后的三维模型,以研究酶-配体相互作用。通过吸附在Lewatit VP OC 1600上固定化的ZAC3脂肪酶被应用于脂肪酸甲酯(FAME)的合成。从系统发育分析中观察到,ZAC3脂肪酶与脂肪酶(Q7M4U7)密切相关(48%)。使用SWISS模型验证服务器对预测的三维模型进行验证。使用拉马钱德兰图和ERRAT图评估模型的氨基酸环境和整体质量。从对接研究中可知,三丁酸甘油酯、三棕榈酸甘油酯和三油酸甘油酯的结合能值分别为-5.37、-5.27和-5.77。在酶与固定化载体的比例为50 mg/g、酯交换反应持续时间为18 h且温度为40℃时,转化率达到80%以上。分子对接研究提供了有关ZAC3脂肪酶与三酰甘油之间相互作用/修饰的信息,这些信息可用于多种应用。固定化脂肪酶可用于适用于生物柴油生产的加氢酯化反应。由Ramaswamy H. Sarma传达。