Related Experiment Video
Updated: Sep 27, 2026

Bioprospecting of Extremophilic Microorganisms to Address Environmental Pollution
Published on: December 30, 2021
Biodegradation of Triphenyl Phosphate by Gordonia polyisoprenivorans YC-XJ4: Environmental Adaptability and
Xianjun Li1, Xiao Ye1, Junhuan Wang2
1Fujian Key Laboratory of Toxicant and Drug Toxicology, Medical College, Ningde Normal University, Ningde 352100, China.
Abstract:
Triphenyl phosphate (TPHP) is a widely used organophosphate flame retardant (OPFR) with concerning environmental persistence and toxicity. Microbial degradation is a promising removal strategy, but highly efficient degraders outside the Sphingomonadaceae family remain rarely reported. In this study, a highly efficient TPHP-degrading strain, designated YC-XJ4, was isolated from plastic-waste-contaminated soil and identified as Gordonia polyisoprenivorans through genomic analysis. The strain exhibited robust degradation activity over broad ranges of temperature (15-40 °C), pH (6.0-10.0), and salinity (0-2% NaCl), with a maximum average degradation velocity of 9.41 mg/(L·h) at an initial TPHP concentration of 300 mg/L and approximately 30% degradation retained at 500 mg/L. Substrate spectrum analysis showed that YC-XJ4 preferentially degraded aryl-OPFRs (TPHP, tricresyl phosphate, and 2-ethylhexyl diphenyl phosphate), whereas no degradation was detected for chlorinated or alkyl congeners. Whole-genome sequencing revealed the absence of known OPFR phosphotriesterase genes, suggesting that TPHP degradation in strain YC-XJ4 may be mediated by novel enzymes. In simulated bioremediation experiments conducted under natural outdoor conditions, the strain effectively removed TPHP from both soil and seawater. In soil, with a 5% (v/v) inoculum, the TPHP concentration decreased from 100 mg/kg to 4.66 mg/kg within 10 h (95.34% removal), while in seawater, 86.41% removal was achieved within 20 h at the same inoculum size. Collectively, G. polyisoprenivorans YC-XJ4 represents a promising non-Sphingomonadaceae degrader with strong environmental adaptability and practical bioremediation potential, providing a valuable candidate for both application and the discovery of novel degrading enzymes.
More Related Videos
Related Concept Videos
Microbial Bioremediation of Pesticides
Microbial Bioremediation of Plastics
Bioremediation
Bioplastics
Microbial Bioremediation of Uranium
Bacterial Phylum Bacteroidota

