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Thermophilic whole‐cell degradation of polyethylene terephthalate using engineered Clostridium thermocellum
by
Wei, Ren
, Cui, Qiu
, Yan, Fei
, Bornscheuer, Uwe T.
, Liu, Ya‐Jun
in
Bacteria
/ Base Composition
/ Batch culture
/ Biocatalysts
/ Biodegradation
/ Bioremediation
/ Cell culture
/ Chassis
/ Chemical degradation
/ Circular economy
/ Clostridium thermocellum
/ Clostridium thermocellum - genetics
/ Cutinase
/ Enzymes
/ Genetic engineering
/ Lignocellulose
/ Mesophilic bacteria
/ Microorganisms
/ Natural environment
/ Peptides
/ Performance degradation
/ Phylogeny
/ Plastic pollution
/ Plastics
/ Polyethylene
/ Polyethylene terephthalate
/ Polyethylene Terephthalates
/ Polymers
/ Product life cycle
/ Proteins
/ Raw materials
/ RNA, Ribosomal, 16S
/ Sequence Analysis, DNA
/ Special Issue
/ Thermophilic bacteria
2021
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Thermophilic whole‐cell degradation of polyethylene terephthalate using engineered Clostridium thermocellum
by
Wei, Ren
, Cui, Qiu
, Yan, Fei
, Bornscheuer, Uwe T.
, Liu, Ya‐Jun
in
Bacteria
/ Base Composition
/ Batch culture
/ Biocatalysts
/ Biodegradation
/ Bioremediation
/ Cell culture
/ Chassis
/ Chemical degradation
/ Circular economy
/ Clostridium thermocellum
/ Clostridium thermocellum - genetics
/ Cutinase
/ Enzymes
/ Genetic engineering
/ Lignocellulose
/ Mesophilic bacteria
/ Microorganisms
/ Natural environment
/ Peptides
/ Performance degradation
/ Phylogeny
/ Plastic pollution
/ Plastics
/ Polyethylene
/ Polyethylene terephthalate
/ Polyethylene Terephthalates
/ Polymers
/ Product life cycle
/ Proteins
/ Raw materials
/ RNA, Ribosomal, 16S
/ Sequence Analysis, DNA
/ Special Issue
/ Thermophilic bacteria
2021
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Thermophilic whole‐cell degradation of polyethylene terephthalate using engineered Clostridium thermocellum
by
Wei, Ren
, Cui, Qiu
, Yan, Fei
, Bornscheuer, Uwe T.
, Liu, Ya‐Jun
in
Bacteria
/ Base Composition
/ Batch culture
/ Biocatalysts
/ Biodegradation
/ Bioremediation
/ Cell culture
/ Chassis
/ Chemical degradation
/ Circular economy
/ Clostridium thermocellum
/ Clostridium thermocellum - genetics
/ Cutinase
/ Enzymes
/ Genetic engineering
/ Lignocellulose
/ Mesophilic bacteria
/ Microorganisms
/ Natural environment
/ Peptides
/ Performance degradation
/ Phylogeny
/ Plastic pollution
/ Plastics
/ Polyethylene
/ Polyethylene terephthalate
/ Polyethylene Terephthalates
/ Polymers
/ Product life cycle
/ Proteins
/ Raw materials
/ RNA, Ribosomal, 16S
/ Sequence Analysis, DNA
/ Special Issue
/ Thermophilic bacteria
2021
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Thermophilic whole‐cell degradation of polyethylene terephthalate using engineered Clostridium thermocellum
Journal Article
Thermophilic whole‐cell degradation of polyethylene terephthalate using engineered Clostridium thermocellum
2021
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Overview
Summary Polyethylene terephthalate (PET) is a mass‐produced synthetic polyester contributing remarkably to the accumulation of solid plastics waste and plastics pollution in the natural environments. Recently, bioremediation of plastics waste using engineered enzymes has emerged as an eco‐friendly alternative approach for the future plastic circular economy. Here we genetically engineered a thermophilic anaerobic bacterium, Clostridium thermocellum, to enable the secretory expression of a thermophilic cutinase (LCC), which was originally isolated from a plant compost metagenome and can degrade PET at up to 70°C. This engineered whole‐cell biocatalyst allowed a simultaneous high‐level expression of LCC and conspicuous degradation of commercial PET films at 60°C. After 14 days incubation of a batch culture, more than 60% of the initial mass of a PET film (approximately 50 mg) was converted into soluble monomer feedstocks, indicating a markedly higher degradation performance than previously reported whole‐cell‐based PET biodegradation systems using mesophilic bacteria or microalgae. Our findings provide clear evidence that, compared to mesophilic species, thermophilic microbes are a more promising synthetic microbial chassis for developing future biodegradation processes of PET waste. Promising bioremediation strategies for plastics waste are of great importance and requirements. In our study, we constructed a recombinant Clostridium thermocellum strain expressing a secretory cutinase (LCC) as a thermophilic whole‐cell biocatalyst to degrade PET under high‐temperature condition (60°C). To our knowledge, this biocatalysis system demonstrates the highest PET degradation efficiency compared to reported whole‐cell‐based systems and also enjoys a low‐cost advantage over the free enzyme‐based process.
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