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Tuning dynamic DNA- and peptide-driven self-assembly in DNA–peptide conjugates

DNA–peptide conjugates offer an opportunity to marry the benefits of both biomolecular classes, combining the high level of programmability found with DNA, with the chemical diversity of peptides. These hybrid systems offer potential in fields such as therapeutics, nanotechnology, and robotics. Usin...

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Autores principales: Taylor, Emerald R., Sato, Akiko, Jones, Isobel, Gudeangadi, Prashant G., Beal, David M., Hopper, James A., Xue, Wei-Feng, Reithofer, Michael R., Serpell, Christopher J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9769108/
https://www.ncbi.nlm.nih.gov/pubmed/36605750
http://dx.doi.org/10.1039/d2sc02482a
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author Taylor, Emerald R.
Sato, Akiko
Jones, Isobel
Gudeangadi, Prashant G.
Beal, David M.
Hopper, James A.
Xue, Wei-Feng
Reithofer, Michael R.
Serpell, Christopher J.
author_facet Taylor, Emerald R.
Sato, Akiko
Jones, Isobel
Gudeangadi, Prashant G.
Beal, David M.
Hopper, James A.
Xue, Wei-Feng
Reithofer, Michael R.
Serpell, Christopher J.
author_sort Taylor, Emerald R.
collection PubMed
description DNA–peptide conjugates offer an opportunity to marry the benefits of both biomolecular classes, combining the high level of programmability found with DNA, with the chemical diversity of peptides. These hybrid systems offer potential in fields such as therapeutics, nanotechnology, and robotics. Using the first DNA–β-turn peptide conjugate, we present three studies investigating the self-assembly of DNA–peptide conjugates over a period of 28 days. Time-course studies, such as these have not been previously conducted for DNA–peptide conjugates, although they are common in pure peptide assembly, for example in amyloid research. By using aging studies to assess the structures produced, we gain insights into the dynamic nature of these systems. The first study explores the influence varying amounts of DNA–peptide conjugates have on the self-assembly of our parent peptide. Study 2 explores how DNA and peptide can work together to change the structures observed during aging. Study 3 investigates the presence of orthogonality within our system by switching the DNA and peptide control on and off independently. These results show that two orthogonal self-assemblies can be combined and operated independently or in tandem within a single macromolecule, with both spatial and temporal effects upon the resultant nanostructures.
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spelling pubmed-97691082023-01-04 Tuning dynamic DNA- and peptide-driven self-assembly in DNA–peptide conjugates Taylor, Emerald R. Sato, Akiko Jones, Isobel Gudeangadi, Prashant G. Beal, David M. Hopper, James A. Xue, Wei-Feng Reithofer, Michael R. Serpell, Christopher J. Chem Sci Chemistry DNA–peptide conjugates offer an opportunity to marry the benefits of both biomolecular classes, combining the high level of programmability found with DNA, with the chemical diversity of peptides. These hybrid systems offer potential in fields such as therapeutics, nanotechnology, and robotics. Using the first DNA–β-turn peptide conjugate, we present three studies investigating the self-assembly of DNA–peptide conjugates over a period of 28 days. Time-course studies, such as these have not been previously conducted for DNA–peptide conjugates, although they are common in pure peptide assembly, for example in amyloid research. By using aging studies to assess the structures produced, we gain insights into the dynamic nature of these systems. The first study explores the influence varying amounts of DNA–peptide conjugates have on the self-assembly of our parent peptide. Study 2 explores how DNA and peptide can work together to change the structures observed during aging. Study 3 investigates the presence of orthogonality within our system by switching the DNA and peptide control on and off independently. These results show that two orthogonal self-assemblies can be combined and operated independently or in tandem within a single macromolecule, with both spatial and temporal effects upon the resultant nanostructures. The Royal Society of Chemistry 2022-11-30 /pmc/articles/PMC9769108/ /pubmed/36605750 http://dx.doi.org/10.1039/d2sc02482a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Taylor, Emerald R.
Sato, Akiko
Jones, Isobel
Gudeangadi, Prashant G.
Beal, David M.
Hopper, James A.
Xue, Wei-Feng
Reithofer, Michael R.
Serpell, Christopher J.
Tuning dynamic DNA- and peptide-driven self-assembly in DNA–peptide conjugates
title Tuning dynamic DNA- and peptide-driven self-assembly in DNA–peptide conjugates
title_full Tuning dynamic DNA- and peptide-driven self-assembly in DNA–peptide conjugates
title_fullStr Tuning dynamic DNA- and peptide-driven self-assembly in DNA–peptide conjugates
title_full_unstemmed Tuning dynamic DNA- and peptide-driven self-assembly in DNA–peptide conjugates
title_short Tuning dynamic DNA- and peptide-driven self-assembly in DNA–peptide conjugates
title_sort tuning dynamic dna- and peptide-driven self-assembly in dna–peptide conjugates
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9769108/
https://www.ncbi.nlm.nih.gov/pubmed/36605750
http://dx.doi.org/10.1039/d2sc02482a
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