Back to Search Start Over

Metagenomic exploration of microbial and enzymatic traits involved in microplastic biodegradation.

Authors :
Hu, Xiaojing
Gu, Haidong
Sun, Xiangxin
Wang, Yongbin
Liu, Junjie
Yu, Zhenhua
Li, Yansheng
Jin, Jian
Wang, Guanghua
Source :
Chemosphere. Jan2024, Vol. 347, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

Agricultural mulch films are frequently applied to achieve high yield, resulting in large quantities of microplastic (MP) pollution in agroecosystem. However, studies focusing specifically on the diversity of MP-degrading enzymes and related microbial communities have yet to be conducted. Here, we established a soil microcosmic incubation with addition of 5% (w/w) conventional (low-density polyethylene (LDPE)) and biodegradable (blend of polylactic acid (PLA) and polybutylene adipate terephthalate (PBAT)) MPs for incubation 90 days. The DNA samples extracted from soils and plastisphere of MPs were examined by metagenomics and genome binning methods, specifically targeting carbohydrate-active enzymes (CAZymes) and plastic-degrading enzymes (PDZymes). The results revealed that plastisphere of MPs exhibited significantly distinct patterns of CAZymes and PDZymes from soils, and abundances of all examined exoenzymes were higher in plastisphere than those in soils. Plastisphere of LDPE-MPs selectively enriched proteases and alkane monooxygenase (alkB), and required families of carbohydrate-binding module (CBM) to increase the binding of CAZymes with MPs. Dissimilarly, diverse CAZymes with high abundances were observed in the plastisphere of PBAT-PLA MPs and esterases were important indicative PDZymes for PBAT-PLA degradation. The enriched exoenzymes in plastisphere of LDPE-MPs were mainly assigned to Actinobacteria while Proteobacteria with higher abundance in plastisphere of PBAT-PLA MPs containing most indicative exoenzymes. Moreover, a high-quality genome classified as Amycolatopsis japonica was reconstructed and found to contain one or more gene copies of indicative exoenzymes for polyethylene. Two novel genomes classified as Sphingomonas were selectively enriched in plastisphere of PBAT-PLA MPs and contained diverse genes encoding degrading exoenzymes. Taken together, our study highlighted the CAZymes and PDZymes can be exploited as potent microbial strategies for solving MPs pollution in croplands. [Display omitted] • MPs enriched a wide range of CAZymes and PDZymes compared to soils. • PE required CBM to enhance enzyme hydrolysis and selected proteases and alkane monooxygenase. • Diverse CAZymes and esterases as the important indicator act on BD biodegradation. • The potential PE degraders assigned to Actinobacteria while members of Proteobacteria enriched in BD. • Amycolatopsis japonica and Sphingononas were identified as the potential degraders for PE and BD, respectively. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00456535
Volume :
347
Database :
Academic Search Index
Journal :
Chemosphere
Publication Type :
Academic Journal
Accession number :
173972991
Full Text :
https://doi.org/10.1016/j.chemosphere.2023.140762