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Related Concept Videos

Bacterial Signaling01:30

Bacterial Signaling

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Bacterial signaling can occur within bacteria (intracellular) or between bacteria (intercellular). At times, a group of bacteria behaves like a community. To achieve this, they engage in quorum sensing, the perception of higher cell density that causes changes in gene expression. Quorum sensing involves both extracellular and intracellular signaling. The signaling cascade starts with a molecule called an autoinducer (AI). Individual bacteria produce AIs that move out of the bacterial cell...
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Imprinting01:22

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Behavioral imprinting is observed in some newborn animals and occurs when they develop strong and specific attachments to another animal (usually a parent) following brief, early-life exposures. Offspring imprint onto parents within a brief period after birth or hatching; this time window is called the critical period. Once imprinting occurs, the bond established between the parents and their offspring is usually long-lasting.
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Related Experiment Video

Updated: Mar 5, 2026

Ultrasensitive Detection of Biomarkers by Using a Molecular Imprinting Based Capacitive Biosensor
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Imprinting of Microorganisms for Biosensor Applications.

Neslihan Idil1, Bo Mattiasson2,3

  • 1Department of Biology, Faculty of Sciences, Hacettepe University, 06800 Ankara, Turkey. nsurucu@hacettepe.edu.tr.

Sensors (Basel, Switzerland)
|March 30, 2017
PubMed
Summary

Molecular imprinting technology offers a stable and cost-effective solution for detecting microorganisms. This review highlights its advances in developing selective sensor strategies for microbial analysis.

Keywords:
applicationsbiosensormicroorganism imprinting

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Area of Science:

  • Biomaterials Science
  • Analytical Chemistry
  • Microbiology

Background:

  • Conventional microorganism detection methods are often slow, labor-intensive, and costly.
  • Emerging applications necessitate rapid and selective microbial detection in complex samples.
  • Natural antibodies, while selective, suffer from limited stability in non-physiological conditions.

Purpose of the Study:

  • To review recent advancements in microorganism detection and quantification.
  • To emphasize the role of molecular imprinting technology in sensor development.
  • To explore the application of molecularly imprinted polymers (MIPs) as artificial recognition elements.

Main Methods:

  • Utilizing molecular imprinting to create artificial recognition elements (MIPs).
  • Integrating MIPs with sensor technologies for microbial detection.
  • Comparing MIP-based sensors with conventional methods and antibody-based sensors.

Main Results:

  • MIPs offer high bio-recognition capability, mechanical and chemical stability.
  • MIPs provide a cost-effective and easily prepared alternative to natural recognition reagents.
  • Molecular imprinting enables the development of selective and sensitive sensor strategies for microorganisms.

Conclusions:

  • Molecular imprinting technology is a promising approach for developing advanced microbial sensors.
  • MIPs present superior properties over natural recognition elements for microbial detection.
  • This technology facilitates the creation of robust and efficient sensor strategies for diverse applications.