利用微生物酶优化聚乳酸降解工艺:简要概述

SustainE Pub Date : 2023-12-01 DOI:10.55366/suse.v1i2.1
Ovinuchi Ejiohuo
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引用次数: 0

摘要

聚乳酸(PLA)是一种理想的生物塑料,因为它由可再生材料制成,并具有生物降解性。然而,聚乳酸的低韧性和易碎性限制了它的应用,这促使人们将聚乳酸与其他生物聚合物混合以增强其性能。随着全球对生物塑料需求的增加,需要高效的聚乳酸降解工艺来配合塑料的高速生产。化学、微生物和酶处理是降解聚乳酸的主要方法,其中酶处理对环境友好且可持续。这就需要确定能够水解聚乳酸的合适酶。 聚乳酸对微生物的直接降解具有很强的抵抗力,这使得微生物酶法加工成为更有吸引力的选择。包括蛋白酶、脂肪酶、酯酶和角质酶在内的微生物酶已显示出降解聚乳酸的潜力。然而,目前对聚乳酸酶降解的研究还需要对最佳工艺、条件和影响因素进行全面研究。本综述旨在通过研究微生物酶及其酶解聚乳酸的过程来填补这一空白。研究结果表明,蛋白酶 K、Savinase 和 Alcalase 等微生物酶有望在优化条件下高效降解聚乳酸。因此,进一步的研究应侧重于进一步探索这些酶,完善酶降解过程,探索这些酶的基因修饰,以及开发可持续的回收方法,以促进聚乳酸等生物塑料的发展,有效解决塑料污染的挑战。 关键词:聚乳酸;酶降解聚乳酸;酶降解;微生物酶;优化;生物塑料;生物降解性;塑料污染;生物修复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of the Degradation Processes for Polylactic Acid using Microbial Enzymes: A Brief Summary
Polylactic acid (PLA) has emerged as a desirable bioplastic due to its production from renewable materials and biodegradability. However, its low toughness and fragility limit its applications, prompting the blending of PLA with other biopolymers to enhance its properties. As the global demand for bioplastics increases, efficient processes for PLA degradation are needed to match the high rate of plastic production. Chemical, microbial, and enzymatic processing are the major methods of PLA degradation, with enzymatic processing being environmentally friendly and sustainable. recyclable products like lactic acid can also be recovered. This creates a need to determine suitable enzymes that can hydrolyze polylactic acid.  PLA exhibits high resistance to direct microbial degradation, making microbial enzymatic processing a more attractive alternative. Microbial enzymes, including proteases, lipases, esterases, and cutinases, have shown potential for PLA degradation. Nevertheless, current research on the enzymatic degradation of PLA needs comprehensive studies on optimal processes, conditions, and influencing factors. This review aims to address this gap by examining microbial enzymes and their processes for the enzymatic degradation of PLA. Findings indicate that microbial enzymes like proteinase K, Savinase, and Alcalase show promise for efficient PLA degradation under optimized conditions. Further research should, therefore, focus on exploring these enzymes further, refining enzymatic degradation processes, exploring genetic modifications of these enzymes, and developing sustainable recycling methods to advance bioplastics like PLA and address plastic pollution challenges effectively. Keywords: Polylactic acid; enzymatic degradation; microbial enzymes; optimization; bioplastic; biodegradability; plastic pollution; bioremediation.
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