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Molecular-electromechanical System for Unamplified Detection of Trace Analytes in Biofluids

Overview
Journal Nat Protoc
Specialties Biology
Pathology
Science
Date 2023 May 19
PMID 37208410
Authors
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Abstract

Biological research and diagnostic applications normally require analysis of trace analytes in biofluids. Although considerable advancements have been made in developing precise molecular assays, the trade-off between sensitivity and ability to resist non-specific adsorption remains a challenge. Here, we describe the implementation of a testing platform based on a molecular-electromechanical system (MolEMS) immobilized on graphene field-effect transistors. A MolEMS is a self-assembled DNA nanostructure, containing a stiff tetrahedral base and a flexible single-stranded DNA cantilever. Electromechanical actuation of the cantilever modulates sensing events close to the transistor channel, improving signal-transduction efficiency, while the stiff base prevents non-specific adsorption of background molecules present in biofluids. A MolEMS realizes unamplified detection of proteins, ions, small molecules and nucleic acids within minutes and has a limit of detection of several copies in 100 μl of testing solution, offering an assay methodology with wide-ranging applications. In this protocol, we provide step-by-step procedures for MolEMS design and assemblage, sensor manufacture and operation of a MolEMS in several applications. We also describe adaptations to construct a portable detection platform. It takes ~18 h to construct the device and ~4 min to finish the testing from sample addition to result.

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References
1.
Anichini C, Czepa W, Pakulski D, Aliprandi A, Ciesielski A, Samori P . Chemical sensing with 2D materials. Chem Soc Rev. 2018; 47(13):4860-4908. DOI: 10.1039/c8cs00417j. View

2.
Banerjee I, Pangule R, Kane R . Antifouling coatings: recent developments in the design of surfaces that prevent fouling by proteins, bacteria, and marine organisms. Adv Mater. 2010; 23(6):690-718. DOI: 10.1002/adma.201001215. View

3.
Gooding J, Gaus K . Single-Molecule Sensors: Challenges and Opportunities for Quantitative Analysis. Angew Chem Int Ed Engl. 2016; 55(38):11354-66. DOI: 10.1002/anie.201600495. View

4.
Sabate Del Rio J, Henry O, Jolly P, Ingber D . An antifouling coating that enables affinity-based electrochemical biosensing in complex biological fluids. Nat Nanotechnol. 2019; 14(12):1143-1149. DOI: 10.1038/s41565-019-0566-z. View

5.
Wang Y, Huang C, Jonas U, Wei T, Dostalek J, Knoll W . Biosensor based on hydrogel optical waveguide spectroscopy. Biosens Bioelectron. 2010; 25(7):1663-8. DOI: 10.1016/j.bios.2009.12.003. View