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Published on: March 15, 2012
Rapid and Sensitive Detection of Aspergillus niger Using a Single-Mediator System Combined with Redox Cycling
Jungwook Kwon1, Eun-Min Cho2, Ponnusamy Nandhakumar1
1Department of Chemistry and Chemistry Institute for Functional Materials , Pusan National University , Busan 46241 , Korea.
Abstract:
Rapid and sensitive mold detection is becoming increasingly important, especially in indoor environments. Common mold detection methods based on double-mediated electron transfer between an electrode and molds are not highly sensitive and reproducible, although they are rapid and simple. Here, we report a sensitive and reproducible detection method specific to Aspergillus niger ( A. niger), based on a single-mediator system combined with electrochemical-chemical (EC) redox cycling. Intracellular NAD(P)H-oxidizing enzymes in molds can convert electro-inactive hydroxy-nitro(so)arenes into electro-active hydroxy-aminoarenes. Since the membrane and wall of A. niger is well permeable to both a substrate (4-nitro-1-naphthol) and a reduced product (4-amino-1-naphthol) in tris buffer (pH 7.5) solution, the electrochemical signal is increased in the presence of A. niger due to two reactions: (i) enzymatic reduction of the substrate to the reduced product and (ii) electrochemical oxidation of the reduced product to an oxidized product. When a reducing agent (NADH) is present in the solution, the oxidized product is reduced back to the reduced product and then electrochemically reoxidized. This EC redox cycling significantly amplifies the electrochemical signal. Moreover, the background level is low and highly reproducible because the substrate and the reducing agent are electro-inactive at an applied potential of 0.20 V. The calculated detection limit for A. niger in a common double-mediator system consisting of Fe(CN)63- and menadione is ∼2 × 104 colony-forming unit (CFU)/mL, but the detection limit in the single-mediator system combined with EC redox cycling is ∼2 × 103 CFU/mL, indicating that the newly developed single-mediator system is more sensitive. Importantly, the detection method requires only an incubation period of 10 min and does not require a washing step, an electrode modification step, or a specific probe.
Insights
A new electrochemical method offers sensitive and reproducible detection of Aspergillus niger mold. This single-mediator system with redox cycling improves mold detection limits significantly.
Area of Science:
- Electrochemistry
- Biosensing
- Microbiology
Background:
- Current mold detection methods lack sensitivity and reproducibility.
- Rapid and sensitive mold detection is crucial for indoor environments.
Purpose of the Study:
- To develop a sensitive and reproducible detection method for Aspergillus niger.
- To improve upon existing electrochemical mold detection techniques.
Main Methods:
- Utilized a single-mediator system combined with electrochemical-chemical (EC) redox cycling.
- Employed intracellular NAD(P)H-oxidizing enzymes in A. niger to convert electro-inactive substrates to electro-active products.
- Leveraged the permeability of A. niger cell membranes and walls to substrates and products.
Main Results:
- Achieved a detection limit of approximately 2 × 10^3 colony-forming units (CFU)/mL for A. niger, a tenfold improvement over common double-mediator systems.
- Demonstrated significant signal amplification due to EC redox cycling.
- Confirmed low background levels and high reproducibility due to electro-inactive substrate and reducing agent at 0.20 V.
Conclusions:
- The developed single-mediator system with EC redox cycling provides a highly sensitive and reproducible method for A. niger detection.
- The method is rapid, requiring only a 10-minute incubation period without washing or electrode modification.
- This approach offers a significant advancement in mold detection technology for indoor environments.
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