Molecularly Imprinted Polymers as an Indirect Sensing Approach for Bacillus cereus Detection

Abstract Bacterial endospores are a major challenge in food safety due to their high resistance and potential to cause spoilage and foodborne illness. Current detection methods can be labor-intensive and require specialized instrumentation. A low-cost, label-free thermal sensing platform for indirect detection of Bacillus cereus endospores using molecularly imprinted polymers (MIPs) targeting dipicolinic acid (DPA), a spore biomarker, was developed. The MIPs were synthesized by free-radical bulk polymerization, characterized by rebinding assays, and evaluated using the Heat Transfer Method (HTM). At 100 μM DPA, the MIPs exhibited an imprinting factor (IF) of 2.62 ± 0.18 (n = 3), demonstrating preferential DPA binding. Sensor performance was evaluated using aqueous DPA, structural analogues, and a complex food matrix. HTM measurements produced concentration-dependent responses, with limits of detection of 0.20 ± 0.15 μM in aqueous DPA solutions and 0.060 ± 0.0098 μM in unpretreated, spiked ultrahigh-temperature (UHT) milk. Terbium(III) fluorescence independently supported DPA retention by the MIPs. Real-time assays with germinated B. cereus suspensions at 105 colony-forming units (CFU) mL–1 enabled proof-of-concept monitoring of biologically released DPA under laboratory conditions. These findings highlight the potential of combining DPA-imprinted polymers with HTM for real-time and label-free indirect endospore detection.

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Publication Details

Journal
ACS Sensors
Published
2026-10-09
DOI
https://doi.org/10.1021/acssensors.6c02873
Primary Topic
Analytical chemistry methods development
Type
article
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article

Molecularly Imprinted Polymers as an Indirect Sensing Approach for Bacillus cereus Detection

Hanne Diliën, Alexander Prange, Ulrike Zanzen, Ramiro Marroquin‐Garcia et al.
ACS Sensors
Analytical chemistry methods development
article

Molecularly Imprinted Polymers as an Indirect Sensing Approach for Bacillus cereus Detection

Hanne Diliën, Alexander Prange, Ulrike Zanzen, Ramiro Marroquin‐Garcia, Bart van Grinsven, Rocio Arreguin-Campos, Alejandro Guzman-Landero
article en

Abstract

Abstract Bacterial endospores are a major challenge in food safety due to their high resistance and potential to cause spoilage and foodborne illness. Current detection methods can be labor-intensive and require specialized instrumentation. A low-cost, label-free thermal sensing platform for indirect detection of Bacillus cereus endospores using molecularly imprinted polymers (MIPs) targeting dipicolinic acid (DPA), a spore biomarker, was developed. The MIPs were synthesized by free-radical bulk polymerization, characterized by rebinding assays, and evaluated using the Heat Transfer Method (HTM). At 100 μM DPA, the MIPs exhibited an imprinting factor (IF) of 2.62 ± 0.18 (n = 3), demonstrating preferential DPA binding. Sensor performance was evaluated using aqueous DPA, structural analogues, and a complex food matrix. HTM measurements produced concentration-dependent responses, with limits of detection of 0.20 ± 0.15 μM in aqueous DPA solutions and 0.060 ± 0.0098 μM in unpretreated, spiked ultrahigh-temperature (UHT) milk. Terbium(III) fluorescence independently supported DPA retention by the MIPs. Real-time assays with germinated B. cereus suspensions at 105 colony-forming units (CFU) mL–1 enabled proof-of-concept monitoring of biologically released DPA under laboratory conditions. These findings highlight the potential of combining DPA-imprinted polymers with HTM for real-time and label-free indirect endospore detection.

ACS Sensors
Witten/Herdecke University (DE), Maastricht University (NL), Hochschule Niederrhein (DE), University of Lübeck (DE)
Openalex Percentile: Top 19%
Analytical chemistry methods development
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Molecularly Imprinted Polymers as an Indirect Sensing Approach for Bacillus cereus Detection — Hanne Diliën, Alexander Prange, et al. · ACS Sensors (2026) | TGRS Research Map | TGRS