Genetic engineering approach to address microplastic environmental pollution: a review

被引:3
作者
Nyakundi, David Onchonga [1 ]
Mogusu, Emmanuel Onyonka [1 ]
Kimaro, Didas Nahum [1 ]
机构
[1] Mwenge Catholic Univ, Dept Agr Earth & Environm Sci, Moshi, Tanzania
关键词
biodegradation; bioplastics; genetic engineering; microplastics; plastics; pollution; polymeric materials; polymerisation; thermostability; THERMOBIFIDA-FUSCA CUTINASE; POLYETHYLENE TEREPHTHALATE; IDEONELLA-SAKAIENSIS; PET; DEGRADATION; ENZYME; HYDROLYSIS; PLASTICS; BIODEGRADATION; POLYESTERASES;
D O I
10.1680/jenes.22.00088
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Polymeric materials have desirable chemical and physical properties, leading to a wide range of applications in consumer industries. However, such properties, which include high hydrophobicity, crystallinity, strong chemical bonds and high molecular weight, inhibit natural biodegradation of plastics by wild-type microbes. This has led to the accumulation of microplastics and nanoplastics in the environment, which is projected to be 12 000 million metric t by the year 2050. Such accumulation bears serious health side effects on both terrestrial and marine ecosystems. Current methods used to control microplastics in the environment have proved inadequate due to high plastic production and extensive uses. Biological methods of controlling plastic pollution, which involve enzymes from various microbes, have emerged as an efficient, eco-friendly and sustainable alternative to plastic treatment and recycling. However, naturally occurring plastic-biodegrading enzymes possess limited biodegradation capacity due to low thermostability and biocatalytic activities, thus limiting large-scale applications. This review focuses on leveraged protein enzyme genetic engineering techniques intended to improve the catalytic performance of putative plastic-biodegrading enzymes and production of environmentally friendly bioplastics from natural fibres as a substitute for synthetic petroleum-based plastics. Genetically modified plastic-degrading enzymes possess boosted substrate interaction, increased hydrophobicity, better catalytic efficiency, increased thermostability and optimised plastic biodegradability.
引用
收藏
页码:179 / 188
页数:10
相关论文
共 98 条
  • [1] Surface Engineering of a Cutinase From Thermobifida Cellulosilytica for Improved Polyester Hydrolysis
    Acero, Enrique Herrero
    Ribitsch, Doris
    Dellacher, Anita
    Zitzenbacher, Sabine
    Marold, Annemarie
    Steinkellner, Georg
    Gruber, Karl
    Schwab, Helmut
    Guebitz, Georg M.
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 2013, 110 (10) : 2581 - 2590
  • [2] Enzymatic Surface Hydrolysis of PET: Effect of Structural Diversity on Kinetic Properties of Cutinases from Thermobifida
    Acero, Enrique Herrero
    Ribitsch, Doris
    Steinkellner, Georg
    Gruber, Karl
    Greimel, Katrin
    Eiteljoerg, Inge
    Trotscha, Eva
    Wei, Ren
    Zimmermann, Wolfgang
    Zinn, Manfred
    Cavaco-Paulo, Artur
    Freddi, Giuliano
    Schwab, Helmut
    Guebitz, Georg
    [J]. MACROMOLECULES, 2011, 44 (12) : 4632 - 4640
  • [3] Development of Starch-Based Materials Using Current Modification Techniques and Their Applications: A Review
    Amaraweera, Sumedha M.
    Gunathilake, Chamila
    Gunawardene, Oneesha H. P.
    Fernando, Nimasha M. L.
    Wanninayaka, Drashana B.
    Dassanayake, Rohan S.
    Rajapaksha, Suranga M.
    Manamperi, Asanga
    Fernando, Chakrawarthige A. N.
    Kulatunga, Asela K.
    Manipura, Aruna
    [J]. MOLECULES, 2021, 26 (22):
  • [4] Tailoring cutinase activity towards polyethylene terephthalate and polyamide 6,6 fibers
    Araujo, Rita
    Silva, Carla
    O'Neill, Alexandre
    Micaelo, Nuno
    Guebitz, Georg
    Soares, Claudio M.
    Casal, Margarida
    Cavaco-Paulo, Artur
    [J]. JOURNAL OF BIOTECHNOLOGY, 2007, 128 (04) : 849 - 857
  • [5] Advances in molecular engineering of carbohydrate-binding modules
    Armenta, Silvia
    Moreno-Mendieta, Silvia
    Sanchez-Cuapio, Zaira
    Sanchez, Sergio
    Rodriguez-Sanoja, Romina
    [J]. PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2017, 85 (09) : 1602 - 1617
  • [6] Characterization and engineering of a plastic-degrading aromatic polyesterase
    Austin, Harry P.
    Allen, Mark D.
    Donohoe, Bryon S.
    Rorrer, Nicholas A.
    Kearns, Fiona L.
    Silveira, Rodrigo L.
    Pollard, Benjamin C.
    Dominick, Graham
    Duman, Ramona
    El Omari, Kamel
    Mykhaylyk, Vitaliy
    Wagner, Armin
    Michener, William E.
    Amore, Antonella
    Skaf, Munir S.
    Crowley, Michael F.
    Thorne, Alan W.
    Johnson, Christopher W.
    Woodcock, H. Lee
    McGeehan, John E.
    Beckham, Gregg T.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2018, 115 (19) : E4350 - E4357
  • [7] Ayu Rafiqah S., 2021, BIOBASED PACKAGING M, P335
  • [8] A dual enzyme system composed of a polyester hydrolase and a carboxylesterase enhances the biocatalytic degradation of polyethylene terephthalate films
    Barth, Markus
    Honak, Annett
    Oeser, Thorsten
    Wei, Ren
    Belisario-Ferrari, Matheus R.
    Then, Johannes
    Schmidt, Juliane
    Zimmermann, Wolfgang
    [J]. BIOTECHNOLOGY JOURNAL, 2016, 11 (08) : 1082 - 1087
  • [9] Bhuyar P., 2019, J BIOTECHNOL BIOMATE, V8, P55, DOI [10.4172/2155-952X-C5-101, DOI 10.4172/2155-952X-C5-101]
  • [10] Switched reaction specificity in polyesterases towards amide bond hydrolysis by enzyme engineering
    Biundo, Antonino
    Subagia, Raditya
    Maurer, Michael
    Ribitsch, Doris
    Syren, Per-Olof
    Guebitz, Georg M.
    [J]. RSC ADVANCES, 2019, 9 (62) : 36217 - 36226