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BhrPETase催化的聚对苯二甲酸乙二酯解聚:一种量子力学/分子力学方法。

BhrPETase catalyzed polyethylene terephthalate depolymerization: A quantum mechanics/molecular mechanics approach.

作者信息

Wang Ningru, Li Yanwei, Zheng Mingna, Dong Weiliang, Zhang Qingzhu, Wang Wenxing

机构信息

Environment Research Institute, Shandong University, Qingdao 266237, PR China.

Environment Research Institute, Shandong University, Qingdao 266237, PR China.

出版信息

J Hazard Mater. 2024 Sep 15;477:135414. doi: 10.1016/j.jhazmat.2024.135414. Epub 2024 Aug 4.

Abstract

Polyethylene terephthalate (PET) is a widely used material in our daily life, particularly in areas such as packaging, fibers, and engineering plastics. However, PET waste can accumulate in the environment and pose a great threat to our ecosystem. Recently enzymatic conversion has emerged as an efficient and green strategy to address the PET crisis. Here, using a theoretical approach combining molecular dynamics simulation and quantum mechanics/molecular mechanics calculations, the depolymerization mechanism of the thermophilic cutinase BhrPETase was fully deciphered. Surprisingly, unlike the previously studied cutinase LCC, our results indicate that the first step, catalytic triad assisted nucleophilic attack, is the rate-determining step. The corresponding Boltzmann weighted average energy barrier is 18.2 kcal/mol. Through extensive comparison between BhrPETase and LCC, we evidence that key features like charge C and angle A significantly impact the depolymerization efficiency of BhrPETase. Non-covalent bond interaction and distortion/interaction analysis inform new insights on enzyme engineer and may aid the recycling of enzymatic PET waste. This study will aid the advancement of the plastic bio-recycling economy and promote resource conservation and reuse.

摘要

聚对苯二甲酸乙二酯(PET)是我们日常生活中广泛使用的一种材料,尤其在包装、纤维和工程塑料等领域。然而,PET废弃物会在环境中积累,对我们的生态系统构成巨大威胁。最近,酶促转化已成为解决PET危机的一种高效且绿色的策略。在此,通过结合分子动力学模拟和量子力学/分子力学计算的理论方法,全面解析了嗜热角质酶BhrPETase的解聚机制。令人惊讶的是,与之前研究的角质酶LCC不同,我们的结果表明第一步,即催化三联体辅助的亲核攻击,是速率决定步骤。相应的玻尔兹曼加权平均能垒为18.2千卡/摩尔。通过对BhrPETase和LCC的广泛比较,我们证明电荷C和角度A等关键特征对BhrPETase的解聚效率有显著影响。非共价键相互作用以及畸变/相互作用分析为酶工程提供了新的见解,并可能有助于酶促PET废弃物的回收利用。这项研究将有助于推动塑料生物回收经济的发展,并促进资源的节约和再利用。

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