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Abstract

Nanosensors for Monitoring Bacterial Growth Kinetics and Response to Antibiotics †

by
Bergoi Ibarlucea
1,2,
Larysa Baraban
1,2,*,
Taiuk Rim
3,
Chang-Ki Baek
3,
J. Arjan G. M. de Visser
4 and
Gianaurelio Cuniberti
1,2
1
Cfaed—Center for Advancing Electronics Dresden, TU Dresden, 01062 Dresden, Germany
2
Institute for Materials Science and Max Bergmann Center for Biomaterials, TU Dresden, 01069 Dresden, Germany
3
Department of Creative IT Engineering, Pohang University of Science and Technology, Pohang 37673, Korea
4
Laboratory of Genetics, Wageningen University, 6708PB Wageningen, The Netherlands
*
Author to whom correspondence should be addressed.
Presented at the 5th International Symposium on Sensor Science (I3S 2017), Barcelona, Spain, 27–29 September 2017.
Proceedings 2017, 1(8), 810; https://doi.org/10.3390/proceedings1080810
Published: 4 May 2018
Miniaturized and cost-efficient methods aiming at high throughput analysis of microbes is of great importance for the surveillance and control of infectious diseases and the related issue of antimicrobial resistance. Here, we demonstrate a miniature nanosensor based on a honeycomb-patterned silicon nanowire field effect transistor (FET) capable of detecting the bacterial growth and antibiotics response in microbiologically-relevant nutrient media [1]. We determine the growth kinetics and metabolic state of Escherichia coli cells in undiluted media via the quantification of changes in the source-drain current caused by varying pH. Furthermore, by measuring the time-dependent profile of pH change for bacterial cultures, treated with antibiotics, we demonstrate for the first time the possibility to electrically distinguish between bacteriostatic and bactericide drug effects. We believe that use of such nanoscopic FET devices enables parameters that are not easily accessible by conventional optical methods to be addressed in a label-free format, i.e., monitoring of microbial metabolic activity or stress response.

References

  1. Ibarlucea, B.; Rim, T.; Baek, C.K.; de Visser, J.A.G.M.; Baraban, L.; Cuniberti, G. Nanowire sensors monitor bacterial growth kinetics and response to antibiotics. Lab Chip 2017, 17, 4283–4293. [Google Scholar] [CrossRef] [PubMed]
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MDPI and ACS Style

Ibarlucea, B.; Baraban, L.; Rim, T.; Baek, C.-K.; Visser, J.A.G.M.d.; Cuniberti, G. Nanosensors for Monitoring Bacterial Growth Kinetics and Response to Antibiotics. Proceedings 2017, 1, 810. https://doi.org/10.3390/proceedings1080810

AMA Style

Ibarlucea B, Baraban L, Rim T, Baek C-K, Visser JAGMd, Cuniberti G. Nanosensors for Monitoring Bacterial Growth Kinetics and Response to Antibiotics. Proceedings. 2017; 1(8):810. https://doi.org/10.3390/proceedings1080810

Chicago/Turabian Style

Ibarlucea, Bergoi, Larysa Baraban, Taiuk Rim, Chang-Ki Baek, J. Arjan G. M. de Visser, and Gianaurelio Cuniberti. 2017. "Nanosensors for Monitoring Bacterial Growth Kinetics and Response to Antibiotics" Proceedings 1, no. 8: 810. https://doi.org/10.3390/proceedings1080810

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