The Microbial Production of Polyhydroxyalkanoates from Waste Polystyrene Fragments Attained Using Oxidative Degradation

被引:53
|
作者
Johnston, Brian [1 ]
Radecka, Iza [1 ]
Hill, David [1 ]
Chiellini, Emo [2 ]
Ilieva, Vassilka Ivanova [2 ]
Sikorska, Wanda [3 ]
Musiol, Marta [3 ]
Zieba, Magdalena [3 ]
Marek, Adam A. [4 ]
Keddie, Daniel [1 ]
Mendrek, Barbara [1 ,3 ]
Darbar, Surila [1 ]
Adamus, Grazyna [3 ]
Kowalczuk, Marek [1 ,3 ]
机构
[1] Univ Wolverhampton, Wolverhampton Sch Biol Chem & Forens Sci, Fac Sci & Engn, Wolverhampton WV1 1LY, W Midlands, England
[2] LMPE, Via Nuova 44-a, I-55018 Lucca, Italy
[3] Polish Acad Sci, Ctr Polymer & Carbon Mat, PL-41800 Zabrze, Poland
[4] Silesian Tech Univ, Dept Chem Organ Technol & Petrochem, PL-44100 Gliwice, Poland
来源
POLYMERS | 2018年 / 10卷 / 09期
基金
欧盟地平线“2020”;
关键词
polyhydroxyalkanoates (PHAs); polystyrene (PS); prodegraded; Cupriavidus necator; fermentation; mass spectrometry; bioplastics; recycling; PLASTIC WASTE; BIODEGRADATION; POLYETHYLENE; CHROMATOGRAPHY; SPECTROSCOPY; BIOPLASTICS; STYRENE; ANALOGS; ENERGY;
D O I
10.3390/polym10090957
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Excessive levels of plastic waste in our oceans and landfills indicate that there is an abundance of potential carbon sources with huge economic value being neglected. These waste plastics, through biological fermentation, could offer alternatives to traditional petrol-based plastics. Polyhydroxyalkanoates (PHAs) are a group of plastics produced by some strains of bacteria that could be part of a new generation of polyester materials that are biodegradable, biocompatible, and, most importantly, non-toxic if discarded. This study introduces the use of prodegraded high impact and general polystyrene (PS0). Polystyrene is commonly used in disposable cutlery, CD cases, trays, and packaging. Despite these applications, some forms of polystyrene PS remain financially and environmentally expensive to send to landfills. The prodegraded PS0 waste plastics used were broken down at varied high temperatures while exposed to ozone. These variables produced PS flakes (PS1-3) and a powder (PS4) with individual acid numbers. Consequently, after fermentation, different PHAs and amounts of biomass were produced. The bacterial strain, Cupriavidus necator H16, was selected for this study due to its well-documented genetic profile, stability, robustness, and ability to produce PHAs at relatively low temperatures. The accumulation of PHAs varied from 39% for prodegraded PS0 in nitrogen rich media to 48% (w/w) of dry biomass with the treated PS. The polymers extracted from biomass were analyzed using nuclear magnetic resonance (NMR) and electrospray ionization tandem mass spectrometry (ESI-MS/MS) to assess their molecular structure and properties. In conclusion, the PS0-3 specimens were shown to be the most promising carbon sources for PHA biosynthesis; with 3-hydroxybutyrate and up to 12 mol % of 3-hydroxyvalerate and 3-hydroxyhexanoate co-monomeric units generated.
引用
收藏
页数:22
相关论文
共 50 条
  • [21] The Enrichment of Microbial Community for Accumulating Polyhydroxyalkanoates Using Propionate-Rich Waste
    Wu, Bo
    Zheng, Dan
    Zhou, Zheng
    Wang, Jing-Li
    He, Xiao-Lan
    Li, Zheng-Wei
    Yang, Hong-Nan
    Qin, Han
    Zhang, Min
    Hu, Guo-Quan
    He, Ming-Xiong
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2017, 182 (02) : 755 - 768
  • [22] The Enrichment of Microbial Community for Accumulating Polyhydroxyalkanoates Using Propionate-Rich Waste
    Bo Wu
    Dan Zheng
    Zheng Zhou
    Jing-Li Wang
    Xiao-Lan He
    Zheng-Wei Li
    Hong-Nan Yang
    Han Qin
    Min Zhang
    Guo-Quan Hu
    Ming-Xiong He
    Applied Biochemistry and Biotechnology, 2017, 182 : 755 - 768
  • [23] Multiscale modeling of the microbial production of polyhydroxyalkanoates using two carbon sources
    Duvigneau, Stefanie
    Duerr, Robert
    Wulkow, Michael
    Kienle, Achim
    COMPUTERS & CHEMICAL ENGINEERING, 2022, 160
  • [24] Multiscale modeling of the microbial production of polyhydroxyalkanoates using two carbon sources
    Duvigneau, Stefanie
    Dürr, Robert
    Wulkow, Michael
    Kienle, Achim
    Computers and Chemical Engineering, 2022, 160
  • [25] Polyhydroxyalkanoates production by aerobic mixed microbial cultures using crude glycerol
    Lemos, Paulo Costa
    Moita, Rita
    Freches, Andre
    Pontes, Rita
    NEW BIOTECHNOLOGY, 2014, 31 : S33 - S33
  • [26] Bacterial production of polyhydroxyalkanoates (PHAs) using various waste carbon sources
    Naseem, Aansa
    Rasul, Ijaz
    Raza, Zulfiqar Ali
    Muneer, Faizan
    Rehman, Asad ur
    Nadeem, Habibullah
    PEERJ, 2024, 12
  • [27] Waste to wealth: Polyhydroxyalkanoates (PHA) production from food waste for a sustainable packaging paradigm
    Kusuma, Heri Septya
    Sabita, Atna
    Putri, Najla Anira
    Azliza, Nadhira
    Illiyanasafa, Nafisa
    Darmokoesoemo, Handoko
    Amenaghawon, Andrew Nosakhare
    Kurniawan, Tonni Agustiono
    FOOD CHEMISTRY: MOLECULAR SCIENCES, 2024, 9
  • [28] Modeling polyhydroxyalkanoates production from sugarcane vinasse by mixed microbial cultures
    Rezende, E. G. F.
    Oliveira, G. H. D.
    Couto, P. T.
    Zaiat, M.
    Ribeiro, R.
    JOURNAL OF WATER PROCESS ENGINEERING, 2023, 53
  • [29] Urban Biorefinery Demonstration: Production of Polyhydroxyalkanoates from a Municipal Solid Waste
    Izarra, Irene
    Alvarez, Irene
    Pinar, F. Javier
    Mena, Javier
    APPLIED SCIENCES-BASEL, 2025, 15 (06):
  • [30] Production and Characterization of Polyhydroxyalkanoates and Native Microorganisms Synthesized from Fatty Waste
    Gomez Cardozo, Javier Ricardo
    Mora Martinez, Amanda Lucia
    Yepes Perez, Maria
    Correa Londono, Guillermo Antonio
    INTERNATIONAL JOURNAL OF POLYMER SCIENCE, 2016, 2016