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首页> 外文期刊>Environmental Science and Pollution Research >Enhanced biodegradation of low and high-density polyethylene by novel bacterial consortia formulated from plastic-contaminated cow dung under thermophilic conditions
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Enhanced biodegradation of low and high-density polyethylene by novel bacterial consortia formulated from plastic-contaminated cow dung under thermophilic conditions

机译:通过在嗜热条件下由塑料污染的牛粪配制的新细菌结合的低密度聚乙烯的生物降解

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The current study aimed to devise eco-friendly, safe, and cost-effective strategies for enhanced degradation of low- and high-density polyethylene (LDPE and HDPE) using newly formulated thermophilic microbial consortia from cow dung and to assess the biodegradation end products. The plastic-degrading bacteria from cow dung samples gathered from highly plastic-acclimated environments were enriched by standard protocols. The degradation ability was comprehended by zone of clearance method, and the percentage of degradation was monitored by weight reduction process. The best isolates were characterized by standard microbiological and molecular biology protocols. The best isolates were employed to form several combinations of microbial consortia, and the degradation end products were analyzed. The stability of 16S ribosomal DNA (rDNA) was predicted by bioinformatics approach. This study identified 75 +/- 2, 55 +/- 2, 60 +/- 3, and 43 +/- 3% degradation for LDPE strips, pellets, HDPE strips, and pellets, respectively, for a period of 120 days (p < 0.05) at 55 degrees C by the formulated consortia of IS1-IS4, and the degradation efficiency was found to be better in comparison with other formulations. The end product analysis by Fourier transform infrared, scanning electron microscopy, energy-dispersive spectroscopy, and nuclear magnetic resonance showed major structural changes and formation of bacterial biofilm on plastic surfaces. These novel isolates were designated as Bacillus vallismortis bt-dsce01, Psuedomonas protegens bt-dsce02, Stenotrophomonas sp. bt-dsce03, and Paenibacillus sp.bt-dsce04 by 16S rDNA sequencing and suggested good gene stability with minimum Gibb's free energy. Therefore, this study imparts substantial information regarding the utilization of these thermophilic microbial consortia from cow dung for rapid polyethylene removal.
机译:目前的研究旨在通过制定环境友好,安全和成本效益的战略低收入和高密度聚乙烯(LDPE和HDPE)的降解增强新制定的嗜热微生物群落从牛粪和评估生物降解的最终产物。从牛粪样品从高度塑料驯化环境收集的塑料降解细菌通过标准协议富集。降解能力通过清除法的区理解,和降解的百分比重量减少过程监控。通过标准的微生物学和分子生物学协议最好的菌株进行了表征。最好分离物用于形成微生物聚生体的几种组合,降解终产物进行了分析。的16S核糖体DNA(基因)的稳定性通过生物信息学方法进行预测。本研究中鉴定75 +/- 2,55 +/- 2,对于LDPE条,小球,HDPE条带,且丸粒,分别为一个周期120天60 +/- 3和43 +/- 3%的降解( p <0.05)在55℃下由IS1-IS4的配制财团,降解效率被认为是更好的与其它配制剂相比。通过傅立叶最终产物分析变换红外,扫描电子显微镜,能量色散光谱法和核磁共振表明主要的结构变化和在塑料表面上形成细菌生物膜的。这些新颖的分离株命名为芽孢杆菌属花域BT-dsce01,假单胞菌protegens BT-dsce02,嗜藻。 BT-dsce03和类芽孢杆菌sp.bt-dsce04通过16S rDNA序列,并以最小的吉布斯自由能提出很好的基因稳定性。因此,本研究赋予关于这些嗜热微生物聚生体从牛粪利用快速聚乙烯去除实质信息。

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