Polyethylene terephthalate (PET) biodeterioration by microalgae: preliminary insights from the screening of indigenous species

IF 3.2 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Dinesh Parida, Kanika Kiran, Rimjhim Sangtani, Regina Nogueira, Kiran Bala
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引用次数: 0

Abstract

Polyethylene terephthalate (PET) is a huge part of consumer products such as beverage bottles, packaging materials, and textile fibres. It contributes significantly to persistent plastic pollution in freshwater ecosystems. This study explores the biodeterioration potential of seven indigenous freshwater microalgae isolated from water bodies near Indore, India, for sustainable PET degradation without chemical pre-treatment. Algal strains were incubated with PET granules for 20 days under controlled laboratory conditions (pH-7.2, temp. 27 ± 3 °C, light intensity of 40.5 µmol/m2/s, and a 12:12 h light–dark period). The average specific growth rate (μ) of the microalgal strains was 0.07 ± 0.01 μ/day. Among these, Asterarcys quadricellulare exhibited the highest deterioration efficiency, achieving a weight loss of 10%, followed by Scenedesmus sp. with a weight loss of 6%. Scanning electron microscopy (SEM), ATR-FTIR spectroscopy, and X-ray diffraction (XRD) analysis revealed notable cracks, chemical alterations, and reduction in crystallinity, respectively. Transmittance intensity of the characteristics FTIR spectra at 1715 cm−1 demonstrated a sharp increase, indicating the formation of carbonyl groups. The reduction in the crystallinity of PET granules was consistently demonstrated by both FTIR and XRD analyses, confirming structural deformities induced by the algal strains. Biochemical analysis revealed that strains A. quadricellulare, C. proboscideum, and P. daitoensis exhibited a significant increase in lipid, protein, and carbohydrate concentration compared to the control. This study highlights the efficacy of unicellular microalgal strains in mitigating PET pollution in aquatic systems while enabling biomass valorisation for other sustainable applications.

Abstract Image

Abstract Image

微藻对聚对苯二甲酸乙二醇酯(PET)的生物降解:来自本地物种筛选的初步见解
聚对苯二甲酸乙二醇酯(PET)是饮料瓶、包装材料和纺织纤维等消费品的重要组成部分。它对淡水生态系统中持续的塑料污染起到了重要作用。本研究探索了从印度Indore附近的水体中分离出来的7种本地淡水微藻的生物降解潜力,用于不经化学预处理的PET可持续降解。在实验室控制条件下(pH-7.2,温度27±3℃,光照强度40.5µmol/m2/s,明暗周期12:12 h),用PET颗粒培养藻类菌株20 d。微藻菌株的平均比生长率(μ)为0.07±0.01 μ/d。其中,四胞星宿(Asterarcys quadriccellula)的变质效率最高,失重10%,其次是花菜(Scenedesmus sp.),失重6%。扫描电镜(SEM)、红外光谱(ATR-FTIR)和x射线衍射(XRD)分析分别显示出明显的裂纹、化学变化和结晶度降低。在1715 cm−1处,特征FTIR光谱的透射强度急剧增加,表明羰基形成。FTIR和XRD分析一致证明了PET颗粒结晶度的降低,证实了藻类菌株引起的结构变形。生化分析结果显示,与对照相比,四胞a .、C. proboscideum和P. daitoensis的脂质、蛋白质和碳水化合物浓度显著增加。这项研究强调了单细胞微藻菌株在减轻水生系统中PET污染方面的功效,同时使生物量增值用于其他可持续应用。
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来源期刊
Biodegradation
Biodegradation 工程技术-生物工程与应用微生物
CiteScore
5.60
自引率
0.00%
发文量
36
审稿时长
6 months
期刊介绍: Biodegradation publishes papers, reviews and mini-reviews on the biotransformation, mineralization, detoxification, recycling, amelioration or treatment of chemicals or waste materials by naturally-occurring microbial strains, microbial associations, or recombinant organisms. Coverage spans a range of topics, including Biochemistry of biodegradative pathways; Genetics of biodegradative organisms and development of recombinant biodegrading organisms; Molecular biology-based studies of biodegradative microbial communities; Enhancement of naturally-occurring biodegradative properties and activities. Also featured are novel applications of biodegradation and biotransformation technology, to soil, water, sewage, heavy metals and radionuclides, organohalogens, high-COD wastes, straight-, branched-chain and aromatic hydrocarbons; Coverage extends to design and scale-up of laboratory processes and bioreactor systems. Also offered are papers on economic and legal aspects of biological treatment of waste.
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