4.8 Article

Deep Learning-Enhanced Potentiometric Aptasensing with Magneto-Controlled Sensors

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WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202210513

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Aptamer; Biosensor; Deep Learning; Magnetic Fields; Potentiometry

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Researchers have developed a magneto-controlled potentiometric method for directly and sensitively measuring the charge change of DNA aptamers upon target binding. This non-equilibrium measurement technique, combined with deep learning algorithms, allows for rapid and reliable classification and quantification of diverse small molecules, thus opening up new possibilities for sensing applications.
Bioelectronic sensors that report charge changes of a biomolecule upon target binding enable direct and sensitive analyte detection but remain a major challenge for potentiometric measurement, mainly due to Debye Length limitations and the need for molecular-level platforms. Here, we report on a magneto-controlled potentiometric method to directly and sensitively measure the target-binding induced charge change of DNA aptamers assembled on magnetic beads using a polymeric membrane potentiometric ion sensor. The potentiometric responses of the negatively charged aptamer, serving as a receptor and reporter, were dynamically controlled and modulated by applying a magnetic field. Based on a potentiometric array, this non-equilibrium measurement technique combined with deep learning algorithms allows for rapidly and reliably classifying and quantifying diverse small molecules using antibiotics as models. This potentiometric strategy opens new modalities for sensing applications.

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