Department of Life Science and Biochemical Engineering, Sun Moon University, Asan 31460, Republic of Korea.
Bio Big Data-Based Chungnam Smart Clean Research Leader Training Program, Sun Moon University, Asan 31460, Republic of Korea.
J Microbiol Biotechnol. 2024 Sep 28;34(9):1836-1847. doi: 10.4014/jmb.2404.04030. Epub 2024 Jul 25.
Polyethylene terephthalate (PET), one of the most widely used plastics in the world, causes serious environmental problems. Recently, scientists have been focused on the enzymatic degradation of PET, an environmentally friendly method that offers an attractive approach to the degradation and recycling of PET. In this work, PET hydrolase from sp. W2061 was biochemically characterized, and the biodegradation of PET was performed using the PET model substrate bis (2-hydroxyethyl terephthalate) (BHET). PET hydrolase has an isoelectric point of 5.84, and a molecular mass of about 50.31 kDa. The optimum pH and temperature were 7.0 and 40°C, respectively. LC-MS analysis of the enzymatic products showed that the PET hydrolase successfully degraded a single ester bond of BHET, leading to the formation of MHET. Furthermore, in silico characterization of the PET hydrolase protein sequence and its predicted three-dimensional structure was designed and compared with the well-characterized IsPETase from . The structural analysis showed that the (Gly-x1-Ser-x2-Gly) serine hydrolase motif and the catalytic triad (Ser, Asp, and His) were conserved in all sequences. In addition, we integrated molecular dynamics (MD) simulations to analyze the variation in the structural stability of the PET hydrolase in the absence and presence of BHET. These simulations showed the formation of a stable complex between the PET hydrolase and BHET. To the best of our knowledge, this is the first study on sp. W2061 to investigate the BHET degradation activity of PET hydrolase, which has potential application in the biodegradation of plastics in the environment.
聚对苯二甲酸乙二醇酯(PET)是世界上应用最广泛的塑料之一,它造成了严重的环境问题。最近,科学家们一直专注于 PET 的酶促降解,这是一种环保的方法,为 PET 的降解和回收提供了有吸引力的途径。在这项工作中,对 sp. W2061 的 PET 水解酶进行了生化特性分析,并使用 PET 模型底物双(2-羟乙基)对苯二甲酸酯(BHET)进行了 PET 的生物降解。PET 水解酶的等电点为 5.84,分子量约为 50.31 kDa。最适 pH 和温度分别为 7.0 和 40°C。酶解产物的 LC-MS 分析表明,PET 水解酶成功地降解了 BHET 的单个酯键,生成了 MHET。此外,还对 PET 水解酶蛋白序列及其预测的三维结构进行了计算机模拟分析,并与 中表征良好的 IsPETase 进行了比较。结构分析表明,所有序列均保守(Gly-x1-Ser-x2-Gly)丝氨酸水解酶基序和催化三联体(Ser、Asp 和 His)。此外,我们还整合了分子动力学(MD)模拟来分析 BHET 存在和不存在时 PET 水解酶结构稳定性的变化。这些模拟表明 PET 水解酶与 BHET 形成了稳定的复合物。据我们所知,这是对 sp. W2061 的首次研究,以研究 PET 水解酶对 BHET 的降解活性,这在环境中塑料的生物降解方面具有潜在的应用。