Liquid NanoBiosensors Enable One‐Pot Electrochemical Detection of Bacteria in Complex Matrices

Author:

Imani Sara M.1,Osman Enas1,Bakhshandeh Fatemeh2,Qian Shuwen3,Sakib Sadman2,MacDonald Michael45,Gaskin Mark6,Zhitomirsky Igor14,Yamamura Deborah75,Li Yingfu135,Didar Tohid F.185,Soleymani Leyla125ORCID

Affiliation:

1. School of Biomedical Engineering McMaster University 1280 Main Street West Hamilton ON L8S 4L7 Canada

2. Department of Engineering Physics McMaster University 1280 Main Street West Hamilton ON L8S 4L7 Canada

3. Department of Biochemistry and Biomedical Sciences McMaster University 1280 Main Street West Hamilton Ontario L8S 4L8 Canada

4. Department of Materials Science and Engineering McMaster University 1280 Main Street West Hamilton Ontario L8S 4L8 Canada

5. Institute of Infectious Disease Research McMaster University Hamilton ON L8N 3Z5 Canada

6. Hamilton Regional Laboratory Medicine Program Hamilton General Hospital 237 Barton St. East Hamilton Ontario L8L 2×2 Canada

7. Department of Pathology and Molecular Medicine McMaster University 1280 Main Street West Hamilton Ontario L8S 4K1 Canada

8. Department of Mechanical Engineering McMaster University Hamilton ON L8S 4L7 Canada

Abstract

AbstractThere is a need for point‐of‐care bacterial sensing and identification technologies that are rapid and simple to operate. Technologies that do not rely on growth cultures, nucleic acid amplification, step‐wise reagent addition, and complex sample processing are the key for meeting this need. Herein, multiple materials technologies are integrated for overcoming the obstacles in creating rapid and one‐pot bacterial sensing platforms. Liquid‐infused nanoelectrodes are developed for reducing nonspecific binding on the transducer surface; bacterium‐specific RNA‐cleaving DNAzymes are used for bacterial identification; and redox DNA barcodes embedded into DNAzymes are used for binding‐induced electrochemical signal transduction. The resultant single‐step and one‐pot assay demonstrates a limit‐of‐detection of 102 CFU mL−1, with high specificity in identifying Escherichia coli amongst other Gram positive and negative bacteria including Klebsiella pneumoniae, Staphylococcus aureus, and Bacillus subtilis. Additionally, this assay is evaluated for analyzing 31 clinically obtained urine samples, demonstrating a clinical sensitivity of 100% and specify of 100%. When challenging this assay with nine clinical blood cultures, E. coli‐positive and E. coli‐negative samples can be distinguished with a probability of p < 0.001.

Funder

Natural Sciences and Engineering Research Council of Canada

Ontario Ministry of Research and Innovation

Canada Research Chairs

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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