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Updated: Jan 23, 2026

High-throughput Fluorometric Measurement of Potential Soil Extracellular Enzyme Activities
Published on: November 15, 2013
Degradation of Perfluorooctane Sulfonamide by Acinetobacter Sp. M and Its Extracellular Enzymes
Jian Hao1, Penghong Wang1, Yufei Kang1
1Department of Chemistry, Shanghai University, Shanghai, 200444, P. R. China.
Abstract:
The Acinetobacter sp. strain M isolated from a contaminated soil sample in Jiangsu Province of China was found to be able to degrade perfluorooctane sulfonamide (PFOSA) effectively. Fluoride anion (F- ) released from PFOSA degradation was detected by ion chromatography, and showed positive correlation to the growth curve of Acinetobacter sp. strain M. The PFOSA degradation efficiency of strain M was approximately 27 %, as assessed by GC analysis. It was shown that enzymes localized outside of cells of Acinetobacter sp. strain M catalyzed the degradation of PFOSA. This further indicates a possibly new (multi-step/pathway) mechanism for PFOSA degradation. It revealed that the extracellular enzyme of the Acinetobacter strain M preferentially cleaves carbon-carbon and carbon-fluorine bonds instead of destroying the carbon-sulfur bond. The growth condition for Acinetobacter sp. strain M was optimized at 30 °C and pH 7.0 in the presence of 2000 mg L-1 of PFOSA and 0.5 % (v/v) of Tween-20. The optimal PFOSA degradation time was found to be 12 h, with a degradation efficiency of 76 % by extracellular enzymes in strain M as determined by GC analysis. The result may provide potential applications for biodegradition of perfluoro organic compounds, such as derivatives of perfluorooctane (C8).
Insights
A soil bacterium, Acinetobacter sp. strain M, effectively degrades perfluorooctane sulfonamide (PFOSA). Extracellular enzymes cleave carbon-fluorine bonds, offering potential for bioremediation of persistent organic pollutants.
Area of Science:
- Environmental Microbiology
- Bioremediation
- Organic Chemistry
Background:
- Perfluorooctane sulfonamide (PFOSA) is a persistent organic pollutant.
- Bioremediation offers a sustainable approach to degrade recalcitrant compounds.
Purpose of the Study:
- To investigate the degradation of PFOSA by Acinetobacter sp. strain M.
- To elucidate the mechanism of PFOSA degradation.
Main Methods:
- Isolation and identification of PFOSA-degrading bacteria.
- Optimization of growth conditions for bacterial degradation.
- Analysis of degradation products and enzyme activity using GC and ion chromatography.
Main Results:
- Acinetobacter sp. strain M demonstrated effective PFOSA degradation (up to 76%).
- Extracellular enzymes were responsible for PFOSA degradation, cleaving C-F and C-C bonds.
- Optimal degradation occurred at 30°C, pH 7.0, with 2000 mg/L PFOSA and 0.5% Tween-20 over 12 hours.
Conclusions:
- Acinetobacter sp. strain M possesses a novel extracellular enzymatic pathway for PFOSA degradation.
- This finding presents a promising biological method for treating PFOSA and related perfluorinated compounds.
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