1.Advances in biodegradation of polyolefin plastics.
Yingbo YUAN ; Wenkai ZHOU ; Quanfeng LIANG ; Longyang DIAN ; Tianyuan SU ; Qingsheng QI
Chinese Journal of Biotechnology 2023;39(5):1930-1948
Polyolefin plastics are a group of polymers with C-C backbone that have been widely used in various areas of daily life. Due to their stable chemical properties and poor biodegradability, polyolefin plastic waste continues to accumulate worldwide, causing serious environmental pollution and ecological crises. In recent years, biological degradation of polyolefin plastics has attracted considerable attention. The abundant microbial resources in the nature offer the possibility of biodegradation of polyolefin plastic waste, and microorganisms capable of degrading polyolefin have been reported. This review summarizes the research progress on the biodegradation microbial resources and the biodegradation mechanisms of polyolefin plastics, presents the current challenges in the biodegradation of polyolefin plastics, and provides an outlook on future research directions.
Plastics/metabolism*
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Polymers/metabolism*
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Polyenes
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Biodegradation, Environmental
2.Commentary: polymer binding modules accelerate enzymatic degradation of poly(ethylene terephthalate).
Yi LU ; Ruizhi HAN ; Ulrich SCHWANEBERG ; Yu JI
Chinese Journal of Biotechnology 2023;39(5):1883-1888
The large scale production and indiscriminate use of plastics led to serious environmental pollution. To reduce the negative effects of plastics waste on the environment, an approach of enzymatic degradation was put forward to catalyze plastics degradation. Protein engineering strategies have been applied to improve the plastics degrading enzyme properties such as activity and thermal stability. In addition, polymer binding modules were found to accelerate the enzymatic degradation of plastics. In this article, we introduced a recent work published in Chem Catalysis, which studied the role of binding modules in enzymatic hydrolysis of poly(ethylene terephthalate) (PET) at high-solids loadings. Graham et al. found that binding modules accelerated PET enzymatic degradation at low PET loading (< 10 wt%) and the enhanced degradation cannot be observed at high PET loading (10 wt%-20 wt%). This work is beneficial for the industrial application of polymer binding modules in plastics degradation.
Polyethylene Terephthalates/metabolism*
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Polymers
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Plastics
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Ethylenes
3.Polyethylene biodegradation: current status and perspectives.
Liting ZHANG ; Bo ZHANG ; Weidong XU ; Zhongli CUI ; Hui CAO
Chinese Journal of Biotechnology 2023;39(5):1949-1962
Polyethylene (PE) is the most abundantly used synthetic resin and one of the most resistant to degradation, and its massive accumulation in the environment has caused serious pollution. Traditional landfill, composting and incineration technologies can hardly meet the requirements of environmental protection. Biodegradation is an eco-friendly, low-cost and promising method to solve the plastic pollution problem. This review summarizes the chemical structure of PE, the species of PE degrading microorganisms, degrading enzymes and metabolic pathways. Future research is suggested to focus on the screening of high-efficiency PE degrading strains, the construction of synthetic microbial consortia, the screening and modification of degrading enzymes, so as to provide selectable pathways and theoretical references for PE biodegradation research.
Polyethylene/metabolism*
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Bacteria/metabolism*
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Plastics/metabolism*
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Biodegradation, Environmental
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Microbial Consortia
4.Advances in poly(ethylene terephthalate) hydrolases.
Zhiyi ZHAO ; Guoqiang ZHANG ; Kun LIU ; Shengying LI
Chinese Journal of Biotechnology 2023;39(5):1998-2014
Plastics have brought invaluable convenience to human life since it was firstly synthesized in the last century. However, the stable polymer structure of plastics led to the continuous accumulation of plastic wastes, which poses serious threats to the ecological environment and human health. Poly(ethylene terephthalate) (PET) is the most widely produced polyester plastics. Recent researches on PET hydrolases have shown great potential of enzymatic degradation and recycling of plastics. Meanwhile, the biodegradation pathway of PET has become a reference model for the biodegradation of other plastics. This review summarizes the sources of PET hydrolases and their degradation capacity, degradation mechanism of PET by the most representative PET hydrolase-IsPETase, and recently reported highly efficient degrading enzymes through enzyme engineering. The advances of PET hydrolases may facilitate the research on the degradation mechanism of PET and further exploration and engineering of efficient PET degradation enzymes.
Humans
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Hydrolases/metabolism*
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Polyethylene Terephthalates/metabolism*
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Plastics/metabolism*
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Ethylenes
5.Engineering the plastic degradation enzyme Ple629 from marine consortium to improve its thermal stability.
Yipei ZHAO ; Hao WANG ; Pan WU ; Zhishuai LI ; Fufeng LIU ; Qun GU ; Weidong LIU ; Jian GAO ; Xu HAN
Chinese Journal of Biotechnology 2023;39(5):2040-2052
Petrochemical-derived polyester plastics such as polyethylene terephthalate (PET) and polybutylene adipate terephthalate (PBAT) have been widely used. However, the difficulty to be degraded in nature (PET) or the long biodegradation cycle (PBAT) resulted in serious environmental pollution. In this connection, treating these plastic wastes properly becomes one of the challenges of environment protection. From the perspective of circular economy, biologically depolymerizing the waste of polyester plastics and reusing the depolymerized products is one of the most promising directions. Recent years have seen many reports on polyester plastics degrading organisms and enzymes. Highly efficient degrading enzymes, especially those with better thermal stability, will be conducive to their application. The mesophilic plastic-degrading enzyme Ple629 from the marine microbial metagenome is capable of degrading PET and PBAT at room temperature, but it cannot tolerate high temperature, which hampers its potential application. On the basis of the three-dimensional structure of Ple629 obtained from our previous study, we identified some sites which might be important for its thermal stability by structural comparison and mutation energy analysis. We carried out transformation design, and performed expression, purification and thermal stability determination of the mutants. The melting temperature (Tm) values of mutants V80C and D226C/S281C were increased by 5.2 ℃ and 6.9 ℃, respectively, and the activity of mutant D226C/S281C was also increased by 1.5 times compared with that of the wild-type enzyme. These results provide useful information for future engineering and application of Ple629 in polyester plastic degradation.
Plastics/metabolism*
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Polyethylene Terephthalates/metabolism*
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Biodegradation, Environmental
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Metagenome
6.A new biosynthesis route for production of 5-aminovalanoic acid, a biobased plastic monomer.
Yaqi KANG ; Ruoshi LUO ; Fanzhen LIN ; Jie CHENG ; Zhen ZHOU ; Dan WANG
Chinese Journal of Biotechnology 2023;39(5):2070-2080
5-aminovalanoic acid (5AVA) can be used as the precursor of new plastics nylon 5 and nylon 56, and is a promising platform compound for the synthesis of polyimides. At present, the biosynthesis of 5-aminovalanoic acid generally is of low yield, complex synthesis process and high cost, which hampers large-scale industrial production. In order to achieve efficient biosynthesis of 5AVA, we developed a new pathway mediated by 2-keto-6-aminohexanoate. By combinatory expression of L-lysine α-oxidase from Scomber japonicus, α-ketoacid decarcarboxylase from Lactococcus lactis and aldehyde dehydrogenase from Escherichia coli, the synthesis of 5AVA from L-lysine in Escherichia coli was achieved. Under the initial conditions of glucose concentration of 55 g/L and lysine hydrochloride of 40 g/L, the final consumption of 158 g/L glucose and 144 g/L lysine hydrochloride, feeding batch fermentation to produce 57.52 g/L of 5AVA, and the molar yield is 0.62 mol/mol. The new 5AVA biosynthetic pathway does not require ethanol and H2O2, and achieved a higher production efficiency as compared to the previously reported Bio-Chem hybrid pathway mediated by 2-keto-6-aminohexanoate.
Nylons
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Lysine/metabolism*
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Hydrogen Peroxide/metabolism*
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Metabolic Engineering
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Plastics/metabolism*
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Fermentation
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Escherichia coli/metabolism*
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Aminocaproates/metabolism*
7.Recent progress in the biosynthesis of dicarboxylic acids, a monomer of biodegradable plastics.
Rui ZHI ; Yanbo LU ; Min WANG ; Guohui LI ; Yu DENG
Chinese Journal of Biotechnology 2023;39(5):2081-2094
Plastics are one of the most important polymers with huge global demand. However, the downsides of this polymer are that it is difficult to degrade, which causes huge pollution. The environmental-friendly bio-degradable plastics therefore could be an alternative and eventually fulfill the ever-growing demand from every aspect of the society. One of the building blocks of bio-degradable plastics is dicarboxylic acids, which have excellent biodegradability and numerous industrial applications. More importantly, dicarboxylic acid can be biologically synthesized. Herein, this review discusses the recent advance on the biosynthesis routes and metabolic engineering strategies of some of the typical dicarboxylic acids, in hope that it will help to provide inspiration to further efforts on the biosynthesis of dicarboxylic acids.
Biodegradable Plastics
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Dicarboxylic Acids
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Polymers/metabolism*
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Biodegradation, Environmental
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Metabolic Engineering
8.Mitochondrial Dysfunction and Immune Cell Metabolism in Sepsis.
Dae Won PARK ; Jaroslaw W ZMIJEWSKI
Infection and Chemotherapy 2017;49(1):10-21
Sepsis is a life threatening condition mediated by systemic infection, but also triggered by hemorrhage and trauma. These are significant causes of organ injury implicated in morbidity and mortality, as well as post-sepsis complications associated with dysfunction of innate and adaptive immunity. The role of cellular bioenergetics and loss of metabolic plasticity of immune cells is increasingly emerging in the pathogenesis of sepsis. This review describes mitochondrial biology and metabolic alterations of immune cells due to sepsis, as well as indicates plausible therapeutic opportunities.
Adaptive Immunity
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Biology
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Energy Metabolism
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Hemorrhage
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Metabolism*
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Mitochondria
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Mortality
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Plastics
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Sepsis*
9.Association between Phthalate Exposure and the Use of Plastic Containers in Shanghai Adults.
Rui Hua DONG ; Han ZHANG ; Mei Ru ZHANG ; Jing Si CHEN ; Min WU ; Shu Guang LI ; Bo CHEN
Biomedical and Environmental Sciences 2017;30(10):727-736
OBJECTIVEConsuming phthalates may be due to the presence of food contact materials, such as plastic containers. In this study, we investigated the association between plastic container use and phthalate exposure in 2,140 Shanghai adults.
METHODSParticipants completed a questionnaire on the frequency of using plastic containers in different scenarios in the previous year (e.g., daily, weekly) and on the consumption of plastic-packaged foods in the previous three days (yes or no). Urinary phthalate metabolites were used to assess the association between phthalate exposure and the use of plastic containers.
RESULTSThe metabolites of di-(2-ethylhexyl) phthalate (DEHP) were the most frequently detected in urine. The results revealed that phthalate exposure was associated with consumption of plastic-packaged breakfast or processed food items in the previous three days. The consumption of these two food items had strong synergistic effects on increasing urinary concentrations of most phthalate metabolites.
CONCLUSIONOur results of plastic-packaged breakfast and processed food may be explained by the use of flexible plastic containers, indicating the importance of risk assessment for the application of flexible plastic containers.
Adult ; China ; Cities ; Data Collection ; Humans ; Phthalic Acids ; metabolism ; urine ; Plastics ; chemistry
10.Environmental Pollution and Diabetes.
Journal of Korean Diabetes 2018;19(2):76-81
Endocrine disrupting chemicals (EDCs) are exogenous chemicals contained in industrial substances and plasticizers commonly utilized worldwide. Human exposure to such chemicals, particularly at low-doses, is omnipresent, persistent, and occurs in complex mixtures. EDCs include bisphenol A, phthalates, pesticides, and persistent organic pollutants such as polychlorinated biphenyls. Burgeoning epidemiological, animal, and cellular data link environmental EDCs to metabolic dysfunction. In the last three decades, the number of diabetic patients has drastically increased worldwide, with current statistics suggesting that the number will double in the next two decades. There is epidemiological and experimental evidence linking background exposure to a selection of environmental EDCs with diabetes and impaired glucose metabolism. EDC may be related to increased risk of diabetes.
Animals
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Complex Mixtures
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Endocrine Disruptors
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Environmental Pollution*
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Glucose
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Humans
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Metabolism
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Pesticides
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Plasticizers
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Plastics
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Polychlorinated Biphenyls