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Environmental Consortium Containing Pseudomonas and Bacillus Species Synergistically Degrades Polyethylene Terephthalate Plastic

机译:含有假单胞菌和芽孢杆菌物种的环境联盟协同降解聚对苯二甲酸乙二醇酯塑料

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Plastics, such as polyethylene terephthalate (PET) from water bottles, are polluting our oceans, cities, and soils. While a number of Pseudomonas species have been described that degrade aliphatic polyesters, such as polyethylene (PE) and polyurethane (PUR), few from this genus that degrade the semiaromatic polymer PET have been reported. In this study, plastic-degrading bacteria were isolated from petroleum-polluted soils and screened for lipase activity that has been associated with PET degradation. Strains and consortia of bacteria were grown in a liquid carbon-free basal medium (LCFBM) with PET as the sole carbon source. We monitored several key physical and chemical properties, including bacterial growth and modification of the plastic surface, using scanning electron microscopy (SEM) and attenuated total reflectance-Fourier transform infrared spectroscopy (ATR-FTIR) spectroscopy. We detected by-products of hydrolysis of PET using 1 H-nuclear magnetic resonance ( 1 H NMR) analysis, consistent with the ATR-FTIR data. The full consortium of five strains containing Pseudomonas and Bacillus species grew synergistically in the presence of PET and the cleavage product bis(2-hydroxyethyl) terephthalic acid (BHET) as sole sources of carbon. Secreted enzymes extracted from the full consortium were capable of fully converting BHET to the metabolically usable monomers terephthalic acid (TPA) and ethylene glycol. Draft genomes provided evidence for mixed enzymatic capabilities between the strains for metabolic degradation of TPA and ethylene glycol, the building blocks of PET polymers, indicating cooperation and ability to cross-feed in a limited nutrient environment with PET as the sole carbon source. The use of bacterial consortia for the biodegradation of PET may provide a partial solution to widespread planetary plastic accumulation. IMPORTANCE While several research groups are utilizing purified enzymes to break down postconsumer PET to the monomers TPA and ethylene glycol to produce new PET products, here, we present a group of five soil bacteria in culture that are able to partially degrade this polymer. To date, mixed Pseudomonas spp. and Bacillus spp. biodegradation of PET has not been described, and this work highlights the possibility of using bacterial consortia to biodegrade or potentially to biorecycle PET plastic waste.
机译:塑料如来自水瓶的聚对苯二甲酸乙二醇酯(PET),污染了海洋,城市和土壤。虽然已经描述了许多假单胞菌种类,但是,在据报道,降解脂肪族聚酯,例如聚乙烯(PE)和聚氨酯(PUR),从而降低了半芳族聚合物PET的这种属。在本研究中,从石油污染的土壤中分离塑性降解细菌,并筛选与PET降解有关的脂肪酶活性。用PET作为唯一碳源在液体无碳基底培养基(LCFBM)中生长细菌的菌株和细菌。我们使用扫描电子显微镜(SEM)监测了几种关键的物理和化学性质,包括塑料表面的细菌生长和修饰,并减弱了总反射率 - 傅里叶变换红外光谱(ATR-FTIR)光谱。我们使用1 H核磁共振(1 H NMR)分析检测副产品PET水解,与ATR-FTIR数据一致。在PET和切割产物双(2-羟乙基)对苯二甲酸(BHET)存在下,含有假单胞菌和杆菌物种的五种菌株的全部联盟在PET和裂解产物双(2-羟乙基)对苯二甲酸(BHET)作为唯一的碳源。从完全联盟中提取的分泌酶能够将BHET完全转化为代谢可用的单体对苯二甲酸(TPA)和乙二醇。基因组草案提供了TPA和乙二醇代谢降解的菌株之间的混合酶促能力的证据,PET聚合物的结构块,表明在具有PET作为唯一碳源的有限营养环境中交叉的合作和能力。用于宠物生物降解的细菌组件的使用可以为广泛的行星塑料积累提供部分解决方案。重要性,而几个研究组正在利用纯化的酶来分解后视型宠物,以便在单体TPA和乙二醇中产生新的宠物产品,在这里,我们呈现了一组培养物中的五种土壤细菌,能够部分降解该聚合物。迄今为止,混合伪表达SPP。和芽孢杆菌spp。尚未描述PET的生物降解,这项工作突出了使用细菌联原到生物降解或可能对生物循环宠物塑料废物的可能性。

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