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Sack, R.

Publications and source records attributed to Sack, R..

2 recordsLinked to original sources

Mismatch-Assisted Toehold Exchange Cascades for Magnetic Nanoparticle-Based Nucleic Acid Diagnostics

Sensitive, simple, and rapid detection of nucleic acid sequences at point-of-care (POC) settings is still an unmet quest. Magnetic readout assays combined with toehold-mediated strand displacement (TMSD)-based circuits are amplification- and wash-free, essential features for contributing to this demand. Nevertheless, nonenzymatic TMSD circuits are slow with low sensitivity for early disease diagnostics. Here, we propose novel mismatch-assisted toehold exchange (MATE) magnetic cascades, wherein magnetic susceptibility increases by dissociation of magnetic nanoparticles (MNPs) from engineered magnetic clusters upon detecting nucleic acid target in solution. The MATE relies on the generation of an allosteric toehold (TH) by spontaneous dissociation to efficiently recycle the target, amplify magnetic signal output, and enhance the assays kinetics. We show that introducing a mismatch in the allosteric TH domain enhances the overall declustering kinetics 7-fold, as also confirmed with oxDNA simulations, with the largest effect gained for the mismatch closest to where the branch migration by the target ends. By integrating MATE into magnetic diagnostics cascades, we demonstrate 3.6-fold better limit-of-detection (LoD) and 12-fold shorter assay time compared to our previous circuit design. Our work makes a major leap towards bringing MNP-based diagnostics much closer to the clinical POC settings by offering a simple, rapid, isothermal, and nonenzymatic assay workflow.

biochemistry↗

Amplification and extraction free quantitative detection of viral nucleic acids and single-base mismatches using magnetic signal amplification circuit

Established nucleic acid detection assays require extraction and purification before sequence amplification and/or enzymatic reactions, hampering their widespread applications in point-of-care (POC) formats. Magnetic immunoassays based on magnetic particle spectroscopy and magnetic nanoparticles (MNPs) are isothermal, extraction- and purification-free, and can be quantitative and benchtop, making them suitable for POC settings. Here, we demonstrate a Magnetic signal Amplification Circuit (MAC) that combines specificity of toehold-mediated DNA strand displacement with magnetic response of MNPs to a clustering/declustering process. Our MAC assays require neither amplification nor extraction of target nucleic acids, and reveal four times better sensitivity than that of a magnetic circuit without signal amplification. Using MAC, we detect a highly specific 43 nucleotides sequence of SARS-CoV-2 virus. The MAC enables sensing both DNA and RNA targets with varying lengths and resolving single-base mismatches. Our MAC can be a powerful tool for translating research of nucleic acids detection to the clinic.

biochemistry↗