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Real-Time Monitoring of Biofilm Formation Using a Noninvasive Impedance-Based Method

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Date 2023 Jan 23
PMID 36688105
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Abstract

Biofilms are complex three-dimensional microbial communities that adhere to a variety of surfaces and interact with their surroundings. Because of the dynamic nature of biofilm formation, establishing a uniform technique for quantifying and monitoring biofilm volume, shape, and features in real-time is challenging. Herein, we describe a noninvasive electrochemical impedance approach for real-time monitoring of dental plaque-derived multispecies biofilm growth on a range of substrates. A working equation relating electrochemical impedance to live biofilm volume has been developed that is applicable to all three surfaces examined, including glass, dental filling resin, and Ca-releasing resin composites. Impedance changes of 2.5, 35, 50, and 65% correlated to biofilm volumes of 0.10 ± 0.01, 16.9 ± 2.2, 29.7 ± 2.3, and 38.6 ± 2.8 μm/μm, respectively. We discovered that glass, dental filling resin, and Ca-releasing dental composites required approximately 3.5, 4.5, and 6 days, respectively, to achieve a 50% change in impedance. The local pH change at the biofilm-substrate interfaces also monitored with potentiometry pH microsensor, and pH change varied according to biofilm volume. This impedance-based technique can be a useful analytical method for monitoring the growth of biofilms on a variety of substrates in real-time. Therefore, this technique may be beneficial for examining antibacterial properties of novel biomaterials.

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References
1.
Kohanski M, Dwyer D, Collins J . How antibiotics kill bacteria: from targets to networks. Nat Rev Microbiol. 2010; 8(6):423-35. PMC: 2896384. DOI: 10.1038/nrmicro2333. View

2.
Farrow M, Hunter I, Connolly P . Developing a real time sensing system to monitor bacteria in wound dressings. Biosensors (Basel). 2015; 2(2):171-88. PMC: 4263571. DOI: 10.3390/bios2020171. View

3.
Muhammad M, Idris A, Fan X, Guo Y, Yu Y, Jin X . Beyond Risk: Bacterial Biofilms and Their Regulating Approaches. Front Microbiol. 2020; 11:928. PMC: 7253578. DOI: 10.3389/fmicb.2020.00928. View

4.
Donlan R . Biofilms: microbial life on surfaces. Emerg Infect Dis. 2002; 8(9):881-90. PMC: 2732559. DOI: 10.3201/eid0809.020063. View

5.
Azeredo J, Azevedo N, Briandet R, Cerca N, Coenye T, Costa A . Critical review on biofilm methods. Crit Rev Microbiol. 2016; 43(3):313-351. DOI: 10.1080/1040841X.2016.1208146. View