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生物催化剂工程在聚对苯二甲酸乙二醇酯塑料废物绿色回收方面的最新进展。

Recent advances in biocatalysts engineering for polyethylene terephthalate plastic waste green recycling.

机构信息

CAS Key Laboratory of Green Process and Engineering & State Key Laboratory of Biochemical Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, PR China; College of Chemical Engineering, University of Chinese Academy of Sciences, 19 A Yuquan Road, Beijing 100049, PR China; Processes Design and Development Department, Egyptian Petroleum Research Institute, Nasr City, 11727 Cairo, Egypt.

CAS Key Laboratory of Green Process and Engineering & State Key Laboratory of Biochemical Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, PR China; College of Chemical Engineering, University of Chinese Academy of Sciences, 19 A Yuquan Road, Beijing 100049, PR China.

出版信息

Environ Int. 2020 Dec;145:106144. doi: 10.1016/j.envint.2020.106144. Epub 2020 Sep 25.

Abstract

The massive waste of poly(ethylene terephthalate) (PET) that ends up in the landfills and oceans and needs hundreds of years for degradation has attracted global concern. The poor stability and productivity of the available PET biocatalysts hinder their industrial applications. Active PET biocatalysts can provide a promising avenue for PET bioconversion and recycling. Therefore, there is an urgent need to develop new strategies that could enhance the stability, catalytic activity, solubility, productivity, and re-usability of these PET biocatalysts under harsh conditions such as high temperatures, pH, and salinity. This has raised great attention in using bioengineering strategies to improve PET biocatalysts' robustness and catalytic behavior. Herein, historical and forecasting data of plastic production and disposal were critically reviewed. Challenges facing the PET degradation process and available strategies that could be used to solve them were critically highlighted and summarized. In this review, we also discussed the recent progress in enzyme bioengineering approaches used for discovering new PET biocatalysts, elucidating the degradation mechanism, and improving the catalytic performance, solubility, and productivity, critically assess their strength and weakness and highlighting the gaps of the available data. Discovery of more potential PET hydrolases and studying their molecular mechanism extensively via solving their crystal structure will widen this research area to move forward the industrial application. A deeper knowledge of PET molecular and degradation mechanisms will give great insight into the future identification of related enzymes. The reported bioengineering strategies during this review could be used to reduce PET crystallinity and to increase the operational temperature of PET hydrolyzing enzymes.

摘要

大量最终被填埋或流入海洋的聚对苯二甲酸乙二醇酯(PET)造成了巨大浪费,需要数百年才能降解,这引起了全球关注。现有的 PET 生物催化剂稳定性和生产效率差,阻碍了其工业应用。活性 PET 生物催化剂为 PET 生物转化和回收提供了有前景的途径。因此,迫切需要开发新的策略,以提高这些在高温、pH 值和盐度等苛刻条件下的 PET 生物催化剂的稳定性、催化活性、溶解性、生产效率和可重复使用性。这引起了人们极大的关注,即利用生物工程策略来提高 PET 生物催化剂的鲁棒性和催化行为。本文批判性地回顾了塑料生产和处理的历史和预测数据。批判性地强调和总结了 PET 降解过程面临的挑战和可用于解决这些问题的现有策略。在这篇综述中,我们还讨论了用于发现新的 PET 生物催化剂、阐明降解机制以及提高催化性能、溶解性和生产效率的酶生物工程方法的最新进展,批判性地评估了它们的优缺点,并突出了现有数据的差距。发现更多潜在的 PET 水解酶,并通过解决其晶体结构来广泛研究其分子机制,将拓宽这一研究领域,推动其工业应用。对 PET 分子和降解机制的更深入了解将为未来相关酶的鉴定提供重要线索。本综述中报道的生物工程策略可用于降低 PET 的结晶度并提高 PET 水解酶的操作温度。

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