An integrative and efficient microbiosensor for β-amyloid42 based on a molecularly imprinted layer coordinating

Xue Kong1, Zimei Yu1, Qinghua Sun1

  • 1Jiaxing Key Laboratory of Molecular Recognition and Sensing, College of Biological and Chemical Engineering, Jiaxing University, Jiaxing 314001, China.

Insights

A novel electrochemical microbiosensor on an acupuncture needle detects Alzheimer's biomarker beta-amyloid (Aβ42) with high sensitivity. This advancement offers a new tool for early disease diagnosis and monitoring.

Area of Science:

  • Electroanalysis and Biosensor Development
  • Biomarker Detection for Neurological Disorders

Background:

  • Monitoring beta-amyloid (Aβ42) is crucial for Alzheimer's disease diagnosis but remains challenging.
  • Existing electrochemical biosensors for Aβ42 require further optimization for sensitivity and selectivity.

Purpose of the Study:

  • To develop a novel electrochemical microbiosensor for sensitive and selective detection of Aβ42.
  • To utilize an acupuncture needle microelectrode (ANME) integrated with a molecularly imprinted polymer (SMIP) for enhanced Aβ42 sensing.

Main Methods:

  • Fabrication of a SMIP layer on an ANME using polydopamine/poly (ionic liquid) via electropolymerization.
  • Integration of hemin-functionalized single-walled carbon nanotubes (SWCNTs) for signal transduction.
  • Detection of Aβ42 based on the hindrance response of hemin signal within imprinted cavities.

Main Results:

  • The microbiosensor achieved a wide linear detection range (100 to 1 x 10^10 fM) with a low limit of detection (0.05 fM).
  • Demonstrated excellent selectivity, stability, and reproducibility in detecting Aβ42 in spiked real samples.
  • The sensor performance was attributed to highly matched imprinted cavities, built-in hemin, and an electronic barrier effect.

Conclusions:

  • The developed electrochemical microbiosensor offers a significant advancement for detecting non-electroactive biomarkers like Aβ42.
  • This technology holds promise for direct sensing applications and functionalizing microelectrodes for improved electroanalysis.
  • Potential integration with acupuncture's properties could offer novel therapeutic monitoring strategies for neurological disorders.