Mesophilic compostability of polylactic acid and the associated microbiome as revealed by metagenomics

IF 8.1 Q1 ENGINEERING, ENVIRONMENTAL
Shu Wei Hsueh , Anya Callista Kurniadi , Tan S.M. Amelia , Chin-Fa Lee , Sebastian D. Fugmann , Shu Yuan Yang
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引用次数: 0

Abstract

Polylactic acid (PLA), the most popular bioplastic, has high sustainability potential as it is bio-sourced and also harbors biodegradability. A form of its biodegradability is via composting, and it was previously established that thermophilic temperatures are needed for PLA breakdown in composts. Here we report the development of composts that have overcome the high-temperature requirement for PLA composting. Our mesophilic composts exhibited clear PLA biodegradability, and this is due to specific biological activity enriched in our material. To investigate the nature of this mesophilic activity, we conducted metagenomics analysis to reveal the microbial composition and enzyme-coding potential associated with PLA biodegradation. These efforts revealed multiple enzyme subtypes with strong enrichment on PLA surfaces in our trained composts, and the top candidate was a type of hydro-lyase, an enzyme that can cleave ester bonds in the absence of water. Hydro-lyases represent a novel class of enzymes that could facilitate PLA degradation, and our results point to the model that the combinatorial action of multiple types of enzymes is what drives PLA biodegradation and how the temperature barrier for PLA composting is overcome.
宏基因组学揭示的聚乳酸的中温堆肥性和相关微生物组
聚乳酸(PLA)是最受欢迎的生物塑料,由于其生物来源和生物降解性,具有很高的可持续性潜力。其生物可降解性的一种形式是通过堆肥,并且以前已经确定需要嗜热温度才能在堆肥中分解聚乳酸。在这里,我们报告了堆肥的发展,克服了高温要求的聚乳酸堆肥。我们的中温堆肥表现出明显的聚乳酸生物降解性,这是由于我们的材料中富含特定的生物活性。为了研究这种中温活性的性质,我们进行了宏基因组学分析,以揭示与聚乳酸生物降解相关的微生物组成和酶编码潜力。这些努力揭示了多种酶亚型在我们训练的堆肥中PLA表面上有很强的富集,其中最可能的是一种水解酶,一种在没有水的情况下可以裂解酯键的酶。水解酶代表了一类可以促进PLA降解的新型酶,我们的研究结果表明,多种酶的组合作用是驱动PLA生物降解的原因,以及如何克服PLA堆肥的温度障碍。
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来源期刊
Journal of hazardous materials letters
Journal of hazardous materials letters Pollution, Health, Toxicology and Mutagenesis, Environmental Chemistry, Waste Management and Disposal, Environmental Engineering
CiteScore
10.30
自引率
0.00%
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0
审稿时长
20 days
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