Literature DB >> 35037829

Microbial community structures and antibiotic biodegradation characteristics during anaerobic digestion of chicken manure containing residual enrofloxacin.

Tie Du1, Lei Feng1, Xiaofei Zhen2.   

Abstract

To explore the interaction between the residual antibiotic in animal manure and biological treatment, the effect of enrofloxacin (ENR) on the anaerobic digestion of chicken manure, and biodegradation rate of ENR was studied under the condition of actual residual ENR content of 0, 8, 16 and 32 mg/kg·TS. The results showed that the addition of ENR increased the total biogas production, especially 8 mg/kg·TS promoted the anaerobic reaction obviously, and the corresponding cumulative biogas production was increased by 15.33%. However, in the presence of 32 mg/kg·TS, the biogas production rate was reduced and the peak period of biogas production was delayed. The results of enzyme activities determination and 16S rRNA sequencing showed that ENR had different effects on archaea and bacteria. The residual ENR could promote hydrolysis reactions in the anaerobic system, but could inhibit acetoclastic methanogens, and the relative abundance of Methanosaeta declined by 7.22‒12.41%. The first-order kinetic model showed that the half-life period of ENR in the anaerobic digestion system was 9.16‒10.83 days, and the biodegradation rate exceeded 80% after the treatment. This study can bring important information for the management of animal manure in the future.

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Keywords:  Enrofloxacin; anaerobic digestion; biodegradation; chicken manure; microbial communities

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Year:  2022        PMID: 35037829     DOI: 10.1080/03601234.2022.2026124

Source DB:  PubMed          Journal:  J Environ Sci Health B        ISSN: 0360-1234            Impact factor:   1.990


  1 in total

1.  Evaluating the Biodegradation of Veterinary Antibiotics Using Kinetics Model and Response Surface Methodology.

Authors:  Martha Noro Chollom; Babatunde Femi Bakare; Sudesh Rathilal; Emmanuel Kweinor Tetteh
Journal:  Molecules       Date:  2022-08-24       Impact factor: 4.927

  1 in total

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