4.7 Article

An eco-friendly sensor based on CQD@MIPs for detection of N-acylated homoserine lactones and its 3D printing applications

Journal

TALANTA
Volume 219, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.talanta.2020.121343

Keywords

N-acylated homoserine lactones; Fluorescence-sensor; Molecularly imprinted polymers; Carbon quantum dots

Funding

  1. National Research Program of China [2018YFC1602800]
  2. Jiangsu Agriculture Innovation Fund [CX (17) 3007]
  3. Natural Science Foundation of Jiangsu Province [BK20190584]
  4. Open Project Program of State Key Laboratory of Dairy Biotechnology [SKLDB2019-005]
  5. National First-class Discipline Program of Food Science and Technology [JUFSTR20180303]
  6. Collaborative Innovation Center for Food Safety and Quality Control

Ask authors/readers for more resources

N-acylated homoserine lactones (AHLs), a class of auto-inducers produced by Gram-negative bacteria, are typical signaling molecules in quorum sensing (QS) systems. Importantly, AHLs play a key role in determining the virulence of foodborne pathogens and reflect the activity of spoilage bacteria. In this study, an eco-friendly fluorescence-sensing platform for the rapid and sensitive detection of AHLs was developed and characterized. Molecularly imprinted polymers embedded with yellow-emitting carbon quantum dots (CQDs) were obtained via the sol-gel process using furanone as an alternative template molecule, and long-wave-emitting CQDs with excellent optical properties were used as signal conversion materials. After template elution, the blotting cavities on the surface of the CQD@MIPs (molecularly imprinted polymers) were able to selectively recognize AHLs, demonstrating a stronger fluorescence response compared with the corresponding CQD@NIPs (non-imprinted polymers). Under optimal test conditions, a good linear relationship between the concentration of analyte and the relative fluorescence intensity of the CQD@MIPs was observed. The linear detection range was 0-2.0 mu M, and the limit of detection (LOD) was 0.067 mu M. Importantly, the proposed sensing platform functioned as an optical detection strategy that responded quickly (2 min) to AHLs. Additionally, this sensing platform was applied to the analysis of AHLs in bacterial supernatant samples with satisfactory results. More interestingly, the 3D-printing CQD@MIPs were tentative explored in this work, which was personalized and portable, has an advantage of point of care testing (POCT) detection in the future. Based on these results, this detection strategy has demonstrated substantial potential for application in and the field of food safety.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available