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Single-Molecule Mechanical Fingerprinting with DNA Nanoswitch Calipers

Decoding the identity of biomolecules from trace samples is a longstanding goal in the field of biotechnology. Advances in DNA analysis have significantly impacted clinical practice and basic research, but corresponding developments for proteins face challenges due to their relative complexity and o...

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Autores principales: Shrestha, Prakash, Yang, Darren, Tomov, Toma E., MacDonald, James I., Ward, Andrew, Bergal, Hans, Krieg, Elisha, Cabi, Serkan, Luo, Yi, Nathwani, Bhavik, Johnson-Buck, Alexander, Shih, William M., Wong, Wesley P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8678201/
https://www.ncbi.nlm.nih.gov/pubmed/34675411
http://dx.doi.org/10.1038/s41565-021-00979-0
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author Shrestha, Prakash
Yang, Darren
Tomov, Toma E.
MacDonald, James I.
Ward, Andrew
Bergal, Hans
Krieg, Elisha
Cabi, Serkan
Luo, Yi
Nathwani, Bhavik
Johnson-Buck, Alexander
Shih, William M.
Wong, Wesley P.
author_facet Shrestha, Prakash
Yang, Darren
Tomov, Toma E.
MacDonald, James I.
Ward, Andrew
Bergal, Hans
Krieg, Elisha
Cabi, Serkan
Luo, Yi
Nathwani, Bhavik
Johnson-Buck, Alexander
Shih, William M.
Wong, Wesley P.
author_sort Shrestha, Prakash
collection PubMed
description Decoding the identity of biomolecules from trace samples is a longstanding goal in the field of biotechnology. Advances in DNA analysis have significantly impacted clinical practice and basic research, but corresponding developments for proteins face challenges due to their relative complexity and our inability to amplify them. Despite progress in methods such as mass spectrometry and mass cytometry, single-molecule protein identification remains a highly challenging objective. Toward this end, we combine DNA nanotechnology with single-molecule force spectroscopy to create a mechanically reconfigurable DNA Nanoswitch Caliper (DNC) capable of measuring multiple coordinates on single biomolecules with atomic resolution. Using optical tweezers, we demonstrate absolute distance measurements with angstrom-level precision for both DNA and peptides, and using multiplexed magnetic tweezers, we demonstrate quantification of relative abundance in mixed samples. Measuring distances between DNA-labeled residues, we perform single-molecule fingerprinting of synthetic and natural peptides, and show discrimination, within a heterogeneous population, between different post-translational modifications. DNA Nanoswitch Calipers are a powerful and accessible tool for characterizing distances within nanoscale complexes that will enable new applications in fields such as single-molecule proteomics.
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spelling pubmed-86782012022-04-21 Single-Molecule Mechanical Fingerprinting with DNA Nanoswitch Calipers Shrestha, Prakash Yang, Darren Tomov, Toma E. MacDonald, James I. Ward, Andrew Bergal, Hans Krieg, Elisha Cabi, Serkan Luo, Yi Nathwani, Bhavik Johnson-Buck, Alexander Shih, William M. Wong, Wesley P. Nat Nanotechnol Article Decoding the identity of biomolecules from trace samples is a longstanding goal in the field of biotechnology. Advances in DNA analysis have significantly impacted clinical practice and basic research, but corresponding developments for proteins face challenges due to their relative complexity and our inability to amplify them. Despite progress in methods such as mass spectrometry and mass cytometry, single-molecule protein identification remains a highly challenging objective. Toward this end, we combine DNA nanotechnology with single-molecule force spectroscopy to create a mechanically reconfigurable DNA Nanoswitch Caliper (DNC) capable of measuring multiple coordinates on single biomolecules with atomic resolution. Using optical tweezers, we demonstrate absolute distance measurements with angstrom-level precision for both DNA and peptides, and using multiplexed magnetic tweezers, we demonstrate quantification of relative abundance in mixed samples. Measuring distances between DNA-labeled residues, we perform single-molecule fingerprinting of synthetic and natural peptides, and show discrimination, within a heterogeneous population, between different post-translational modifications. DNA Nanoswitch Calipers are a powerful and accessible tool for characterizing distances within nanoscale complexes that will enable new applications in fields such as single-molecule proteomics. 2021-10-21 2021-12 /pmc/articles/PMC8678201/ /pubmed/34675411 http://dx.doi.org/10.1038/s41565-021-00979-0 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: https://www.springernature.com/gp/open-research/policies/accepted-manuscript-terms
spellingShingle Article
Shrestha, Prakash
Yang, Darren
Tomov, Toma E.
MacDonald, James I.
Ward, Andrew
Bergal, Hans
Krieg, Elisha
Cabi, Serkan
Luo, Yi
Nathwani, Bhavik
Johnson-Buck, Alexander
Shih, William M.
Wong, Wesley P.
Single-Molecule Mechanical Fingerprinting with DNA Nanoswitch Calipers
title Single-Molecule Mechanical Fingerprinting with DNA Nanoswitch Calipers
title_full Single-Molecule Mechanical Fingerprinting with DNA Nanoswitch Calipers
title_fullStr Single-Molecule Mechanical Fingerprinting with DNA Nanoswitch Calipers
title_full_unstemmed Single-Molecule Mechanical Fingerprinting with DNA Nanoswitch Calipers
title_short Single-Molecule Mechanical Fingerprinting with DNA Nanoswitch Calipers
title_sort single-molecule mechanical fingerprinting with dna nanoswitch calipers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8678201/
https://www.ncbi.nlm.nih.gov/pubmed/34675411
http://dx.doi.org/10.1038/s41565-021-00979-0
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