对热带泻湖沉积物中塑料生物降解所涉及的微生物群落、降解途径和酶系统的元基因组研究

Lateef B. Salam
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引用次数: 0

摘要

由于塑料具有令人兴奋的特性,可用于多种用途,因此产生了大量塑料废物,对环境区划、新陈代谢过程和水生生态系统生物群的健康产生了负面影响。本研究采用霰弹枪元基因组学方法研究了热带透镜池塘沉积物(APS)中参与塑料降解的微生物群落、降解途径和酶系统。利用 PlasticDB 数据库对 APS 蛋白质组(ORFs)进行功能注释,发现注释了 1015 个酶蛋白,包括解聚酶、酯酶、脂肪酶、水解酶、硝基苄酯酶、几丁质酶、羧基酯酶、聚酯酶、氧化还原酶、聚酰胺酶、PET 酶、MHET 酶、漆酶、烷烃单氧酶等参与塑料聚合物解聚的酶。研究还发现,聚乙二醇(PEG)、聚羟基烷酸酯(PHA)、聚羟基丁酸酯(PHB)、聚乳酸(PLA)、聚己二酸丁二醇酯(PBAT)、聚对苯二甲酸乙二醇酯(PET)和尼龙的注释酶数量最多。利用 KEGG GhostKOALA 进一步注释发现,除对苯二甲酸盐外,塑料聚合物解聚的所有其他降解产物,如乙醛酸盐、己二酸盐、琥珀酸盐、1,4-丁二醇、乙二醇、乳酸盐和乙醛都进一步代谢为三羧酸循环的中间产物。使用 AAI Profiler 和 BLASTP 对注释蛋白质进行分类鉴定后发现,假单胞菌群成员在大多数塑料类型中占主导地位,其次是放线菌群和酸性杆菌群。这项研究揭示了迄今为止尚未报道过的不同门类的新型塑料降解菌参与塑料降解。这表明,水生环境中的塑料污染普遍存在着适应性良好的降解群落,它们可能是减轻水生环境中塑料污染影响的一线希望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Metagenomic investigations into the microbial consortia, degradation pathways, and enzyme systems involved in the biodegradation of plastics in a tropical lentic pond sediment

Metagenomic investigations into the microbial consortia, degradation pathways, and enzyme systems involved in the biodegradation of plastics in a tropical lentic pond sediment

The exploitation of exciting features of plastics for diverse applications has resulted in significant plastic waste generation, which negatively impacts environmental compartments, metabolic processes, and the well-being of aquatic ecosystems biota. A shotgun metagenomic approach was deployed to investigate the microbial consortia, degradation pathways, and enzyme systems involved in the degradation of plastics in a tropical lentic pond sediment (APS). Functional annotation of the APS proteome (ORFs) using the PlasticDB database revealed annotation of 1015 proteins of enzymes such as depolymerase, esterase, lipase, hydrolase, nitrobenzylesterase, chitinase, carboxylesterase, polyesterase, oxidoreductase, polyamidase, PETase, MHETase, laccase, alkane monooxygenase, among others involved in the depolymerization of the plastic polymers. It also revealed that polyethylene glycol (PEG), polyhydroxyalkanoates (PHA), polyhydroxybutyrate (PHB), polylactic acid (PLA), polybutylene adipate terephthalate (PBAT), polyethylene terephthalate (PET), and nylon have the highest number of annotated enzymes. Further annotation using the KEGG GhostKOALA revealed that except for terephthalate, all the other degradation products of the plastic polymers depolymerization such as glyoxylate, adipate, succinate, 1,4-butanediol, ethylene glycol, lactate, and acetaldehyde were further metabolized to intermediates of the tricarboxylic acid cycle. Taxonomic characterization of the annotated proteins using the AAI Profiler and BLASTP revealed that Pseudomonadota members dominate most plastic types, followed by Actinomycetota and Acidobacteriota. The study reveals novel plastic degraders from diverse phyla hitherto not reported to be involved in plastic degradation. This suggests that plastic pollution in aquatic environments is prevalent with well-adapted degrading communities and could be the silver lining in mitigating the impacts of plastic pollution in aquatic environments.

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