Related Experiment Video
Updated: May 12, 2026

Immobilization of Multi-biocatalysts in Alginate Beads for Cofactor Regeneration and Improved Reusability
Published on: April 22, 2016
A robust immobilized system using Rhodococcus pyridinivorans YY802 for the efficient dissipation of refractory
Nihong Yao1, Zhengzheng Cao2, Wenli Zhou1
1National Key Laboratory of Agricultural Microbiology, Huazhong Agricultural University, Wuhan 430070, PR China.
Abstract:
The discharge of industrial wastewater containing refractory and toxic monomethylaniline (MMA) isomers poses a severe threat to aquatic ecosystems. To address this, a degrading bacterium, Rhodococcus pyridinivorans YY802, was isolated and immobilized in a composite carrier comprising sodium alginate (SA), bamboo charcoal (BC), and chitosan (CA). Strain YY802 demonstrated a versatile capacity to degrade o-, m-, and p-toluidine, with sodium pyruvate (SP) serving as a critical co-metabolic substrate to overcome substrate inhibition. Compared to single carriers, the SA+BC+CA composite provided a superior "micro-nest" structure due to the high specific surface area of bamboo charcoal. This structure facilitated a synergistic process of "adsorption-enrichment-biotransformation" significantly enhancing removal ability and robustness against environmental fluctuations (temperature and salinity). Although Response Surface Methodology (RSM) predicted an optimal degradation peak at 46 °C and pH 6.73, the immobilized system exhibited excellent environmental adaptability, maintaining high removal efficiencies (>90%) at a cost-effective ambient temperature of 28 °C. Consequently, operating at 28 °C in a continuous Sequencing Batch Reactor (SBR) system, the immobilized cells exhibited remarkable stability and high dissipation capability, removing approximately 85% of COD from mixed toluidine wastewater, significantly outperforming free cells. Furthermore, a phytotoxicity assessment using Lemna minor confirmed that the biotreatment effectively eliminated oxidative stress factors and restored plant growth, verifying the ecological safety of the effluent. This study presents a highly efficient, stable, and eco-friendly biotechnology for the remediation of complex dye-contaminated wastewater.
Related Concept Videos
Microbial Bioremediation of Pesticides
Microbial Bioremediation of Plastics
Microbial Bioremediation of Uranium
Metabolism of Chemolithotrophs

