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Achromobacter xylosoxidans as a new microorganism strain colonizing high-density polyethylene as a key step to its biodegradation

机译:木糖氧化无色杆菌作为一种新的微生物菌株定居在高密度聚乙烯中是其生物降解的关键步骤

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摘要

This study presents results of research on isolation new bacteria strain Achromobacter xylosoxidans able to effect on the structure of high-density polyethylene (HDPE), polymer resistant to degradation in environment. New strain of A. xylosoxidans PE-1 was isolated from the soil and identified by analysis of the 16S ribosome subunit coding sequences. The substance to be degraded was HDPE in the form of thin foil films. The foil samples were analyzed with Attenuated Total Reflectance Fourier Transform Infrared Spectroscopy (ATR-FTIR) as well as scanning electron microscope (SEM), and the results revealed degradation of chemical structure of HDPE. About 9 % loss of weight was also detected as a result of A. xylosoxidans PE-1 effect on HDPE foil. On the basis of comparative spectral analysis of the raw material before the bacteria treatment and the spectrum from a spectra database, it was assumed that the HDPE was the only source of carbon and energy for the microorganisms. No fillers or other additives used in the plastic processing were observed in HDPE before experiments. This is the first communication showing that A. xylosoxidans is able to modify chemical structure of HDPE, what was observed both on FTIR, in mass reduction of HDPE and SEM analysis. We also observed quite good growth of the bacteria also when the HDPE was the sole carbon source in the medium. These results prove that A. xylosoxidans is an organism worth applying in future HDPE biodegradation studies.
机译:这项研究提出了分离新细菌菌株木糖氧化无色杆菌的研究结果,该菌株能够影响高密度聚乙烯(HDPE)的结构,该聚合物在环境中具有抗降解性。从土壤中分离出新的木糖氧化过氧化物酶PE-1菌株,并通过分析16S核糖体亚基编码序列进行鉴定。待降解的物质是呈薄箔形式的HDPE。用衰减全反射傅立叶变换红外光谱(ATR-FTIR)和扫描电子显微镜(SEM)分析了箔样品,结果表明HDPE的化学结构变差。由于木糖氧化过氧化物酶PE-1对HDPE箔的影响,还检测到约9%的体重减轻。根据细菌处理之前原料的比较光谱分析和光谱数据库的光谱,可以假定HDPE是微生物的唯一碳和能量来源。实验前在HDPE中未观察到用于塑料加工的填料或其他添加剂。这是首次表明木糖氧化过氧化物酶能够改变HDPE的化学结构,这是在FTIR上观察到的,即HDPE的质量降低和SEM分析。当HDPE是培养基中唯一的碳源时,我们还观察到了细菌的良好生长。这些结果证明木糖氧化过氧化物酶是值得在未来的HDPE生物降解研究中应用的生物。

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