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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