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Updated: Jul 13, 2026

A Novel Bioreactor for High Density Cultivation of Diverse Microbial Communities
Published on: December 25, 2015
Thiocyanate-driven denitrification with mixotrophic flexibility for real coking wastewater treatment: Novel insights
Yu Zhang1, Yu-Tong Li1, Quan Zhang1
1National Engineering Research Center for Safe Disposal and Resources Recovery of Sludge, School of Environment, Harbin Institute of Technology, Harbin, Heilongjiang Province, 150090, China.
Abstract:
Industrial coking wastewater, characterized by high thiocyanate (SCN⁻), nitrate, and complex toxic organics, challenges conventional biological nitrogen removal and impedes resource recovery. To shift the treatment objective from mere detoxification to predictable nitrogen partitioning, a SCN⁻-driven biological nitrogen removal (SCN⁻-BNR) bioreactor was operated for 200 days, comprising a 160-day synthetic stoichiometric optimization phase and a 40-day validation phase with undiluted real coking wastewater. We identified the influent SCN⁻-S/NO3⁻-N mass ratio (S/N) as the primary operational lever governing nitrogen fate. Increasing this ratio to ∼4.0 drove >99% nitrate removal, with DNRA contributing 49.1% of the total nitrate reduction. Crucially, 15N stable isotope tracing and metagenomics elucidated a synergistic cross-feeding mechanism: Chlorobium sp. likely initiates SCN⁻ cleavage, followed by cyanate hydrolysis (cynS) and dissimilatory nitrate reduction to ammonium (DNRA, nrfA) driven by distinct populations (SpSt-501 sp. And JADFDR01 sp.). DNRA was highly activated under electron-donor-surplus conditions, directly contributing up to 22.8% of the generated effluent ammonium. This metabolic division of labor proved exceptionally resilient; the mixotrophic consortium maintained stable >95% SCN⁻ and >90% NO3⁻ removal during real wastewater validation, demonstrating strong tolerance to phenol, quinoline, and salinity. This study provides a verifiable operational-mechanistic framework for engineering next-generation SCN⁻-driven bioreactors, integrating robust complex wastewater detoxification with circular nitrogen management.
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