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Biodegradative Activities of Selected Environmental Fungi on a Polyester Polyurethane Varnish and Polyether Polyurethane Foams

机译:某些环境真菌对聚酯聚氨酯清漆和聚醚聚氨酯泡沫的生物降解活性

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Polyurethane (PU) is widely used in many aspects of modern life because of its versatility and resistance. However, PU waste disposal generates large problems, since it is slowly degraded, there are limited recycling processes, and its destruction may generate toxic compounds. In this work, we isolated fungal strains able to grow in mineral medium with a polyester PU (PS-PU; Impranil DLN) or a polyether PU (PE-PU; Poly Lack) varnish as the only carbon source. Of the eight best Impranil-degrading strains, the six best degraders belonged to the Cladosporium cladosporioides complex, including the species C. pseudocladosporioides , C. tenuissimum , C. asperulatum , and C. montecillanum , and the two others were identified as Aspergillus fumigatus and Penicillium chrysogenum . The best Impranil degrader, C. pseudocladosporioides strain T1.PL.1, degraded up to 87% after 14 days of incubation. Fourier transform infrared (FTIR) spectroscopy analysis of Impranil degradation by this strain showed a loss of carbonyl groups (1,729 cm~(?1)) and N—H bonds (1,540 and 1,261 cm~(?1)), and gas chromatography-mass spectrometry (GC-MS) analysis showed a decrease in ester compounds and increase in alcohols and hexane diisocyanate, indicating the hydrolysis of ester and urethane bonds. Extracellular esterase and low urease, but not protease activities were detected at 7 and 14 days of culture in Impranil. The best eight Impranil-degrading fungi were also able to degrade solid foams of the highly recalcitrant PE-PU type to different extents, with the highest levels generating up to 65% of dry-weight losses not previously reported. Scanning electron microscopy (SEM) analysis of fungus-treated foams showed melted and thinner cell wall structures than the non-fungus-treated ones, demonstrating fungal biodegradative action on PE-PU.IMPORTANCE Polyurethane waste disposal has become a serious problem. In this work, fungal strains able to efficiently degrade different types of polyurethanes are reported, and their biodegradative activity was studied by different experimental approaches. Varnish biodegradation analyses showed that fungi were able to break down the polymer in some of their precursors, offering the possibility that they may be recovered and used for new polyurethane synthesis. Also, the levels of degradation of solid polyether polyurethane foams reported in this work have never been observed previously. Isolation of efficient polyurethane-degrading microorganisms and delving into the mechanisms they used to degrade the polymer provide the basis for the development of biotechnological processes for polyurethane biodegradation and recycling.
机译:聚氨酯(PU)因其多功能性和耐性而广泛用于现代生活的许多方面。但是,PU废物处理会产生很大的问题,因为它降解缓慢,回收过程有限,并且其破坏可能会产生有毒化合物。在这项工作中,我们分离了能够在矿物培养基中生长的真菌菌株,其中聚酯PU(PS-PU; Impranil DLN)或聚醚PU(PE-PU; Poly Lack)清漆是唯一的碳源。在八种最佳的Impranil降解菌株中,六种最佳的降解菌属于Cladosporium cladosporioides复合体,包括C. pseudocladosporioides,C。tenuissimum,C。asperulatum和C. montecillanum菌种,另外两个被鉴定为烟曲霉和烟曲霉。产黄青霉。孵育14天后,最佳的Impranil降解菌C. pseudocladosporioides菌株T1.PL.1降解高达87%。傅里叶变换红外(FTIR)光谱分析了此菌株对Impranil的降解,结果表明羰基(1,729 cm〜(?1))和N-H键(1,540和1,261 cm〜(?1))丢失,气相色谱-质谱(GC-MS)分析显示酯化合物减少,醇和己二异氰酸酯增加,表明酯和氨基甲酸酯键发生水解。在Impranil中培养7天和14天时未检测到细胞外酯酶和低尿素酶,但未检测到蛋白酶活性。最好的八种降解Impranil的真菌还能够在不同程度上降解高度难降解的PE-PU型固体泡沫,其中最高的含量可产生高达65%的干重损失,这是以前没有报道的。真菌处理的泡沫的扫描电子显微镜(SEM)分析显示,与未经过真菌处理的泡沫相比,其泡沫壁更融化,更薄,这说明真菌对PE-PU的生物降解作用。重要聚氨酯废料处理已成为一个严重的问题。在这项工作中,报道了能够有效降解不同类型聚氨酯的真菌菌株,并通过不同的实验方法研究了它们的生物降解活性。清漆的生物降解分析表明,真菌能够分解某些前体中的聚合物,从而有可能将其回收并用于新的聚氨酯合成。另外,这项工作中报道的固体聚醚聚氨酯泡沫的降解水平以前从未见过。分离有效的可降解聚氨酯的微生物并深入研究它们用于降解聚合物的机理,为开发用于聚氨酯生物降解和再循环的生物技术工艺奠定了基础。

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