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在环境条件下真菌对聚(己二酸丁二醇酯-co-对苯二甲酸)-聚乳酸-热塑性淀粉基商业生物塑料薄膜的生物降解作用。

Fungal biodegradation of poly(butylene adipate-co-terephthalate)-polylactic acid-thermoplastic starch based commercial bio-plastic film at ambient conditions.

机构信息

School of Earth Sciences and Environmental Engineering, Gwangju Institute of Science and Technology (GIST), Gwangju 61005, Republic of Korea.

Department of Biological Environment, Kangwon National University, 1 Kangwondaehak-gil, Chuncheon, Gangwon State, 24341, Republic of Korea.

出版信息

Chemosphere. 2024 Apr;353:141554. doi: 10.1016/j.chemosphere.2024.141554. Epub 2024 Feb 29.

Abstract

Microbial biodegradation of commercially available poly(butylene adipate-co-terephthalate)-polylactic acid-thermoplastic starch based bio-plastic has been pursued at high temperatures exceeding 55 °C. Herein, we first reported three newly isolated fungal strains from farmland soil samples of Republic of Korea namely, Pyrenochaetopsis sp. strain K2, Staphylotrichum sp. S2-1, and Humicola sp. strain S2-3 were capable of degrading a commercial bio-plastic film with degradation rates of 9.5, 8.6, and 12.2%, respectively after 3 months incubation at ambient conditions. Scanning electron microscopy (SEM) analyses showed that bio-plastic film was extensively fragmented with severe cracking on the surface structure after incubation with isolated fungal strains. X-ray diffraction (XRD) analysis also revealed that high crystallinity of the commercial bio-plastic film was significantly decreased after degradation by fungal strains. Liquid chromatography-mass spectrometry (LC-MS) analyses of the fungal culture supernatants containing the bio-plastic film showed the peaks for adipic acid, terephthalic acid (TPA), and terephthalate-butylene (TB) as major metabolites, suggesting cleavage of ester bonds and accumulation of TPA. Furthermore, a consortium of fungal strain K2 with TPA degrading bacterium Pigmentiphaga sp. strain P3-2 isolated from the same sampling site exhibited faster degradation rate of the bio-plastic film within 1 month of incubation with achieving complete biodegradation of accumulated TPA. We assume that the extracellular lipase activity presented in the fungal cultures could hydrolyze the ester bonds of PBAT component of bio-plastic film. Taken together, the fungal and bacterial consortium investigated herein could be beneficial for efficient biodegradation of the commercial bio-plastic film at ambient conditions.

摘要

在超过 55°C 的高温下,对市售聚(己二酸丁二醇酯-对苯二甲酸-co-乳酸)-热塑性淀粉基生物塑料进行了微生物生物降解研究。在此,我们首次报道了从韩国农田土壤样本中分离得到的三株新真菌菌株,即 Pyrenochaetopsis sp. 菌株 K2、Staphylotrichum sp. S2-1 和 Humicola sp. 菌株 S2-3,它们在环境条件下孵育 3 个月后,分别具有 9.5%、8.6%和 12.2%的降解商业生物塑料薄膜的能力。扫描电子显微镜(SEM)分析表明,生物塑料薄膜在与分离的真菌菌株孵育后,表面结构严重开裂,广泛碎裂。X 射线衍射(XRD)分析还表明,真菌菌株降解后,商业生物塑料薄膜的高结晶度显著降低。含有生物塑料薄膜的真菌培养物上清液的液相色谱-质谱(LC-MS)分析显示,主要代谢产物为己二酸、对苯二甲酸(TPA)和对苯二甲酸丁二醇酯(TB),表明酯键的断裂和 TPA 的积累。此外,从同一采样点分离得到的 TPA 降解菌 Pigmentiphaga sp. 菌株 P3-2 与真菌菌株 K2 的 consortium在孵育 1 个月内表现出更快的生物塑料薄膜降解率,实现了积累的 TPA 的完全生物降解。我们假设真菌培养物中存在的细胞外脂肪酶活性可以水解生物塑料薄膜中 PBAT 成分的酯键。综上所述,本文研究的真菌和细菌联合体可以在环境条件下有效地促进商业生物塑料薄膜的生物降解。

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