J 2024

A reusable QCM biosensor with stable antifouling nano-coating for on-site reagent-free rapid detection of E. coli O157:H7 in food products

FORINOVÁ, Michala, Alina PILIPENCO, N. Scott LYNN, Radka OBOŘILOVÁ, Hana ŠIMEČKOVÁ et. al.

Basic information

Original name

A reusable QCM biosensor with stable antifouling nano-coating for on-site reagent-free rapid detection of E. coli O157:H7 in food products

Authors

FORINOVÁ, Michala, Alina PILIPENCO, N. Scott LYNN, Radka OBOŘILOVÁ, Hana ŠIMEČKOVÁ, Markéta VRABCOVÁ, Monika SPASOVOVÁ, Rachael JACK, Petr HORÁK, Milan HOUSKA, Petr SKLÁDAL, Petr ŠEDIVÁK, Zdeněk FARKA and Hana VAISOCHEROVÁ-LÍSALOVÁ

Edition

Food Control, Elsevier, 2024, 0956-7135

Other information

Language

English

Type of outcome

Article in a journal

Country of publisher

Netherlands

Confidentiality degree

is not subject to a state or trade secret

References:

Organization

Přírodovědecká fakulta – Repository – Repository

UT WoS

001267261100001

EID Scopus

2-s2.0-85197596947

Keywords in English

Antifouling coating; E. coli O157:H7 detection; QCM biosensor; On-site analysis; Reusability

Links

EF18_046/0015974, research and development project. LX22NPO5103, research and development project. MUNI/A/1582/2023, interní kód Repo. CIISB III, large research infrastructures.
Changed: 16/3/2025 00:51, RNDr. Daniel Jakubík

Abstract

V originále

Numerous biosensors have shown exceptional analytical performance under laboratory conditions, yet only a few are capable of on-site use with complex, non-model samples while exhibiting reliable analytical performance. Here, we present a new portable biosensor for the rapid (30 min) and accurate detection of bacterial agents in “real-world” food samples, which are originally in either solid or liquid form. The biosensor combines well-established quartz crystal microbalance (QCM) technology, with innovative terpolymer brush nano-coatings on the sensing surface to efficiently reduce non-specific fouling from food samples. Following reagent-free sample preparation, where solid food samples are homogenized, we validated the sensor's detection capabilities on native pathogenic Escherichia coli O157:H7 (E. coli O157:H7) in hamburgers, Czech dumplings, and milk. We achieved limits of detection (LOD), as low as 7.5 × 10^2 CFU/mL in milk, a value approaching fundamental QCM limits, using a simple direct detection assay format. The biosensor's exceptional reusability was demonstrated through 60 sequential hamburger sample injections, resulting in only a minor LOD shift toward the end of series. A 10-min sonication treatment during sample preparation significantly enhanced sensitivity for E. coli O157:H7 in hamburgers and dumplings, yielding LODs as low as 3.1 × 10^3 CFU/mL and 2.6 × 10^4 CFU/mL, respectively. For on-site analysis, we integrated the nano-coated sensing chip into a custom-built four-channel portable QCM biosensor with an optimized microfluidic system, which can be produced on a scale suitable for practical deployment.

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