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Updated: Jan 15, 2026

Development of Sulfidogenic Sludge from Marine Sediments and Trichloroethylene Reduction in an Upflow Anaerobic Sludge Blanket Reactor
Published on: October 15, 2015
Elemental sulfur enhances autotrophic denitrifying phosphorus removal from carbon-deficient wastewater through
Boyi Cheng1, Jinji Jiang2, Lichang Zhou2
1Hubei Key Laboratory of Multi-media Pollution Cooperative Control in Yangtze Basin, School of Environmental Science and Engineering, Huazhong University of Science and Technology (HUST), Wuhan 430074, China; School of Environmental Studies, China University of Geosciences, Wuhan 430074, Hubei, China.
Abstract:
The deficient organic carbon sources frequently constrain biological phosphorus removal in urban wastewater treatment. While elemental sulfur (S0) serves as an economical electron donor for autotrophic denitrification, its capacity to offer supplementary electron donor to enhance denitrifying phosphorus removal (DPR) under carbon-deficient conditions (< 200 mg COD/L) remains unexplored. To address this gap, a long-term reactor with and without S0 supplementation was operated for 178 days. Results demonstrated that S0 effectively replaced partial carbon demand, elevating phosphorus removal efficiency from 93.3 % (200 mg COD/L) to 95.1 % under carbon-deficient conditions (150 mg COD/L + 67.5 mg/L S0). Sulfur conversion analysis revealed heightened S0 utilization during carbon limitation, corroborated by typical cycle tests. Microbial analyses indicated S0 enrichment of community richness (Ace: +1.14 %) and diversity (Shannon: +2.0 %), while molecular ecological networks exhibited enhanced complexity (connectance: +100 %) and stability (robustness: +100∼206.3 %). Crucially, S0 amplified synergistic interactions between polyphosphate-accumulating organisms (PAOs; Rhodobacteraceae, Dechloromonas, Sediminibacterium) and sulfur-driven denitrifiers (Terrimonas, Arenimonas). Random forest analysis confirmed S0-mediated upregulation of key functional genes: phosphorus metabolism (ppk, ppx), sulfur oxidation (soxB, dsrA), and electron transfer (nuoF, coxA, cytc), thereby optimizing electron flux and ATP synthesis for metabolic demands. This work establishes an S0-assisted DPR strategy that leverages synergistic microbial partnerships and enhanced electron transport to overcome carbon deficiency in wastewater treatment.
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