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Carbon-nanotube field-effect transistors for resolving single-molecule aptamer-ligand binding kinetics. | LitMetric

AI Article Synopsis

  • Small molecules like neurotransmitters are essential for biological functions, but traditional methods for detecting them often lack portability and sensitivity to single molecules.
  • This study introduces carbon-nanotube-based single-molecule field-effect transistors (smFETs) as a new method to detect the charge of individual molecules, specifically demonstrating their use in quantifying serotonin.
  • By observing changes in the electrical conductance of the nanotube when a DNA aptamer binds to serotonin, the research reveals detailed insights into the dynamics of molecular interactions and specific conformational changes that occur during binding events.

Article Abstract

Small molecules such as neurotransmitters are critical for biochemical functions in living systems. While conventional ultraviolet-visible spectroscopy and mass spectrometry lack portability and are unsuitable for time-resolved measurements in situ, techniques such as amperometry and traditional field-effect detection require a large ensemble of molecules to reach detectable signal levels. Here we demonstrate the potential of carbon-nanotube-based single-molecule field-effect transistors (smFETs), which can detect the charge on a single molecule, as a new platform for recognizing and assaying small molecules. smFETs are formed by the covalent attachment of a probe molecule, in our case a DNA aptamer, to a carbon nanotube. Conformation changes on binding are manifest as discrete changes in the nanotube electrical conductance. By monitoring the kinetics of conformational changes in a binding aptamer, we show that smFETs can detect and quantify serotonin at the single-molecule level, providing unique insights into the dynamics of the aptamer-ligand system. In particular, we show the involvement of G-quadruplex formation and the disruption of the native hairpin structure in the conformational changes of the serotonin-aptamer complex. The smFET is a label-free approach to analysing molecular interactions at the single-molecule level with high temporal resolution, providing additional insights into complex biological processes.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11229667PMC
http://dx.doi.org/10.1038/s41565-023-01591-0DOI Listing

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