Aug 2026· Microorganisms· Vol 14· 0 citations· 51 references
Medicine
TL;DR
This study isolated 305 marine-derived microorganisms with potential PET-degrading capability from samples collected from mangrove areas of Zhanjiang and the intertidal zones of Daya Bay, Shenzhen, China, using PET powder as a major carbon source and reveals the genetic basis underlying PET degradation and associated metabolic pathways in strain SCSIO 85700.
Abstract
The long-term accumulation of polyethylene terephthalate (PET) in marine environments may drive the evolution of microbial degradation capabilities, positioning the ocean as a valuable reservoir for discovering novel PET-degrading microorganisms. In this study, we isolated 305 marine-derived microorganisms with potential PET-degrading capability from samples collected from mangrove areas of Zhanjiang and the intertidal zones of Daya Bay, Shenzhen, China, using PET powder as a major carbon source. Subsequent evaluation of degradation performance via scanning electron microscopy and Fourier-transform infrared spectroscopy analysis identified 14 isolates capable of degrading PET film. These 14 strains belonged to 14 distinct species, none of which, to the best of our knowledge, has been previously documented as PET degraders. Among them, Microbacterium aurum SCSIO 85700 exhibited the most potent PET-degrading activity, achieving a weight loss of 2.1 mg (2.1%) and a 6.5% increase in relative crystallinity over 30 days. Genome analysis revealed the genetic basis underlying PET degradation and associated metabolic pathways in strain SCSIO 85700. Notably, genome mining and structural modeling identified two candidate polyester hydrolases, MA2267 and MA2443, possessing conserved His–Asp–Ser catalytic triads and exposed substrate-binding clefts resembling those of characterized PET-degrading enzymes, suggesting their potential involvement in PET depolymerization. Collectively, this study expands the recognized diversity of marine PET-degrading microorganisms and provides microbial resources for sustainable PET bioremediation.
Findings demonstrate that this bacterial-fungal consortium shows potential for PET degradation and could serve as a viable option for bioremediation in saline ecosystems.
Zeinab Rezaei, M. A. Amoozegar, Hamid Moghimi· Ecotoxicology and Environmen...· 0 citations
This study outlines existing metabolic engineering techniques for bio-upcycling PET into high-value compounds, as well as a number of engineering approaches intended to improve the performance of PET-degrading enzymes. One of the most popular aromatic polyesters in the world, polyethylene terephthalate (PET) has an annual demand of over 29 million metric tons in 2022 and is expected to rise by 40% by 2030. Due to the growing amount of PET waste and the existing insufficiency of recycling techniques, it has accumulated in terrestrial ecosystems, posing serious hazards to world health. These technologies seek to convert recovered PET into more valuable items in order to address energy issues as well as environmental sustainability. One potentially biosustainable technique for handling and recycling plastics is enzyme-mediated biocatalytic depolymerization. Protein engineering developments have been applied to modify and improve the many plastic-degrading enzymes that have been discovered from microbial sources. Additionally, microbial metabolic engineering makes it possible to create customized microbial chassis that can break down PET substrates and transform the resulting monomers into compounds that are useful for industry.
Abdul Rauf Bhatti, Rabiya Asim, Muddasar Jamal et al.· Practices in Science and Tec...· 0 citations
It is demonstrated that municipal dumpsite soils are valuable reservoirs of polyethylene‑degrading bacteria and highlight the potential application of Bacillus paramycoides and Pseudomonas aeruginosa in eco‑friendly plastic waste management strategies.
Kruti P. Doshi, Ripalben Fadiya, Dhruvil Brahmbhatt et al.· International Journal of Tec...· 0 citations
The nonhemolytic properties, combined with the ability to lower surface tension and exhibit strong emulsification and oil displacement activities, highlight the potential of this biosurfactant for bioremediation, petroleum industry applications, and biomedical use.
Drifa Yalaoui-guellal, M. Moudache, Sunil Kumar Sahu et al.· Journal of Surfactants and D...· 0 citations
The results confirm the effectiveness of NMR spectroscopy as a tool for studying bioremediation mechanisms and indicate that biosurfactants may act not only as emulsifiers for oils but also as modulators of the catabolic potential of the soil microbiome.
L. Biktasheva, A. Gordeev, D. S. Ivanov et al.· Eurasian Soil Science· 0 citations
A metagenomic analysis of soil and rhizosphere samples from the Antarctic vascular plants Deschampsia antarctica and Colobanthus quitensis is conducted, as sources of microbial enzymes with potential PET-hydrolytic activity, demonstrating the diversity of PET-hydrolase-like genes within Antarctic rhizosphere and soil microbiomes.
Valentín Berrios-Farías, Sergio Guajardo-Leiva, Jorge Gallardo-Cerda et al.· Frontiers in Microbiology· 0 citations