@article {10.3844/ajbbsp.2026.22.02.020, article_type = {journal}, title = {Anaerobic Fermentation for Ceftriaxone Sodium Degradation in Excess Sludge: pH-Dependent Performance, Metabolite Formation, and Microbial Community Dynamics}, author = {Li, Weiwei and Niu, Hong and Zhang, Yonghui and Liu, Hong and Chen, Yongzhi}, volume = {22}, number = {2}, year = {2026}, month = {Jul}, pages = {20-1}, doi = {10.3844/ajbbsp.2026.22.02.020}, url = {https://thescipub.com/abstract/ajbbsp.2026.22.02.020}, abstract = {The accumulation of ceftriaxone sodium (CTX), a third-generation cephalosporin antibiotic, in wastewater and sludge poses significant environmental and health risks, necessitating effective degradation strategies. This study investigated anaerobic fermentation of excess sludge (12,000-14,000 mg/L) spiked with 15 mg/L CTX under varying pH conditions (4, 7, 10, 12) to evaluate sludge reduction, metabolite formation, and microbial community dynamics. Results demonstrated that pH 10 yielded optimal performance, achieving a 62.09% sludge reduction rate, 129.35 mg/L NH₄⁺-N release, and 1,485.84 mg/L volatile fatty acid (VFA) production, alongside efficient CTX degradation via hydrolysis and deamination pathways. Microbial analysis revealed dominant phyla (Proteobacteria, Bacteroidota, Chloroflexi) and genera (Ellin6067, Caldilinea) under pH 4-10, while extreme alkalinity (pH 12) favored Firmicutes but reduced functional diversity. The findings highlight pH 10 as the optimal condition for balancing CTX removal, sludge reduction, and resource recovery, offering a practical pretreatment approach for antibiotic-laden sludge in wastewater treatment.}, journal = {American Journal of Biochemistry and Biotechnology}, publisher = {Science Publications} }