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Hollow Microneedle-based Sensor for Multiplexed Transdermal Electrochemical Sensing
Published on: June 1, 2012
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.
Abstract:
Monitoring beta-amyloid1-42 (Aβ42) is vital and challenging, which is a typical biomarker of Alzheimer's disease. Here, a novel electrochemical microbiosensor is developed to detect Aβ42 on an acupuncture needle. Hemin is well known for its characteristics, including its ability to self-assemble on single-walled carbon nanotube (SWCNT), the molecular interaction with Aβ42, and the intrinsic electroactive signal. These properties are exploited to anchor and respond to Aβ42 after integrating a molecularly imprinted surface polymer (SMIP). The SMIP layer of polydopamine/poly (ionic liquid) can be prepared by electropolymerization on an acupuncture needle microelectrode (ANME), which undergoes growth and formation of a polymeric structure around the anchored Aβ42. Interestingly, the imprinted cavities express a fluent signal of built-in hemin after eluting the templates, and show a highly selective and sensitive hindrance response for the recombined Aβ42. Under optimized conditions, the microbiosensor displays a linear range of 100 to 1 × 1010 fM with a limit of detection of 0.05 fM. There are development and advances for the discipline of electroanalysis after comparing the technique and important indicators with the electrochemical biosensors reported of Aβ42. The microbiosensor also exhibited excellent selectivity, good stability, and reproducibility, which was effectively used to detect Aβ42 in real spiked samples. The improved behavior of the developed microbiosensor can be attributed to its superficial highly matched imprinted cavities, built-in hemin label, and electronic barrier without signal of the nonimprinted surface to outside molecules. This microbiosensor has a scientific and reference value for directly sensing non-electroactive biomarkers, functionalizing microelectrodes, and electron transport cavities. It would also be amazing if this new microbiosensor could combine with the unclear and magical property of acupuncture in the treatment of neurological disorders.
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.
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