Screening of a New Kosakonia Species for Polyethylene Biodegradation.

IF 2.5 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Jin-Hee Cho, Seung-Do Yun, Hyun-Woo Kim, Min-Ju Seo, Bong Hyun Sung, Soo-Jin Yeom
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Abstract

Polyethylene (PE) is among the most widely used synthetic plastics globally, serving as an essential material in daily life and numerous industries, such as packaging for bottles and food, as well as in the production of toys and pipes. PE is used for various purposes owing to its high durability and low production costs, leading to a steadily increasing demand. However, PE waste is a significant contributor to environmental pollution, posing serious threats to marine and soil ecosystems. Therefore, the efficient decomposition of PE, a synthetic polymer known for its resistance to degradation, using bacteria offers a sustainable and effective method for reusing PE. In this study, we isolated a novel species of Kosakonia, designated Kosakonia cowanii JNU01, from a landfill site, capable of biodegrading PE. K. cowanii JNU01 exhibited the highest cell growth rate in media containing PE, indicating its effectiveness in decomposing PE for use as a sole carbon source in its metabolic pathway. Treatment of PE with K. cowanii JNU01 resulted in the emergence of new chemical functional groups, including hydroxyl, carboxyl, amide, and ether groups, within the inert hydrocarbon structure. Analysis of the PE film treated with K. cowanii JNU01 revealed considerable physical degradation on the film's surface. Additionally, various metabolites released from PE by K. cowanii JNU01 were identified. These findings suggest that K. cowanii JNU01 proves to be an effective candidate bacterium for PE degradation.

聚乙烯生物降解新物种Kosakonia的筛选。
聚乙烯(PE)是全球使用最广泛的合成塑料之一,在日常生活和许多行业中都是必不可少的材料,例如瓶子和食品的包装,以及玩具和管道的生产。由于其高耐用性和低生产成本,PE被用于各种用途,导致需求稳步增长。然而,聚乙烯废弃物是造成环境污染的重要因素,对海洋和土壤生态系统构成严重威胁。因此,利用细菌高效分解聚乙烯(一种以其抗降解性而闻名的合成聚合物)为PE的再利用提供了一种可持续和有效的方法。在本研究中,我们从垃圾填埋场分离到一种具有PE生物降解能力的新物种Kosakonia cowanii JNU01。K. cowanii JNU01在含PE的培养基中表现出最高的细胞生长速率,表明其能够有效分解PE作为其代谢途径中唯一的碳源。用K. cowanii JNU01处理PE后,在惰性烃结构中出现了新的化学官能团,包括羟基、羧基、酰胺和醚基。对经K. cowanii JNU01处理的PE膜进行分析,发现膜表面有明显的物理降解。此外,还鉴定了考氏K. cowanii JNU01从PE中释放的多种代谢物。这些结果表明,考瓦尼氏杆菌JNU01被证明是PE降解的有效候选细菌。
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来源期刊
Journal of microbiology and biotechnology
Journal of microbiology and biotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-MICROBIOLOGY
CiteScore
5.50
自引率
3.60%
发文量
151
审稿时长
2 months
期刊介绍: The Journal of Microbiology and Biotechnology (JMB) is a monthly international journal devoted to the advancement and dissemination of scientific knowledge pertaining to microbiology, biotechnology, and related academic disciplines. It covers various scientific and technological aspects of Molecular and Cellular Microbiology, Environmental Microbiology and Biotechnology, Food Biotechnology, and Biotechnology and Bioengineering (subcategories are listed below). Launched in March 1991, the JMB is published by the Korean Society for Microbiology and Biotechnology (KMB) and distributed worldwide.
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