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Rational design and application of responsive α-helical peptide hydrogels

Biocompatible hydrogels have a wide variety of potential applications in biotechnology and medicine, such as the controlled delivery and release of cells, cosmetics and drugs; and as supports for cell growth and tissue engineering1. Rational peptide design and engineering are emerging as promising n...

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Autores principales: Banwell, Eleanor F., Abelardo, Edgardo S., Adams, Dave J., Birchall, Martin A., Corrigan, Adam, Donald, Athene M., Kirkland, Mark, Serpell, Louise C., Butler, Michael F., Woolfson, Derek N.
Formato: Texto
Lenguaje:English
Publicado: 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2869032/
https://www.ncbi.nlm.nih.gov/pubmed/19543314
http://dx.doi.org/10.1038/nmat2479
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author Banwell, Eleanor F.
Abelardo, Edgardo S.
Adams, Dave J.
Birchall, Martin A.
Corrigan, Adam
Donald, Athene M.
Kirkland, Mark
Serpell, Louise C.
Butler, Michael F.
Woolfson, Derek N.
author_facet Banwell, Eleanor F.
Abelardo, Edgardo S.
Adams, Dave J.
Birchall, Martin A.
Corrigan, Adam
Donald, Athene M.
Kirkland, Mark
Serpell, Louise C.
Butler, Michael F.
Woolfson, Derek N.
author_sort Banwell, Eleanor F.
collection PubMed
description Biocompatible hydrogels have a wide variety of potential applications in biotechnology and medicine, such as the controlled delivery and release of cells, cosmetics and drugs; and as supports for cell growth and tissue engineering1. Rational peptide design and engineering are emerging as promising new routes to such functional biomaterials2-4. Here we present the first examples of rationally designed and fully characterized self-assembling hydrogels based on standard linear peptides with purely α-helical structures, which we call hydrogelating self-assembling fibres (hSAFs). These form spanning networks of α-helical fibrils that interact to give self-supporting physical hydrogels of >99% water content. The peptide sequences can be engineered to alter the underlying mechanism of gelation and, consequently, the hydrogel properties. Interestingly, for example, those with hydrogen-bonded networks melt upon heating, whereas those formed via hydrophobic interactions strengthen when warmed. The hSAFs are dual-peptide systems that only gel on mixing, which gives tight control over assembly5. These properties raise possibilities for using the hSAFs as substrates in cell culture. We have tested this in comparison with the widely used Matrigel substrate, and demonstrate that, like Matrigel, hSAFs support both growth and differentiation of rat adrenal pheochromocytoma cells for sustained periods in culture.
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spelling pubmed-28690322010-05-13 Rational design and application of responsive α-helical peptide hydrogels Banwell, Eleanor F. Abelardo, Edgardo S. Adams, Dave J. Birchall, Martin A. Corrigan, Adam Donald, Athene M. Kirkland, Mark Serpell, Louise C. Butler, Michael F. Woolfson, Derek N. Nat Mater Article Biocompatible hydrogels have a wide variety of potential applications in biotechnology and medicine, such as the controlled delivery and release of cells, cosmetics and drugs; and as supports for cell growth and tissue engineering1. Rational peptide design and engineering are emerging as promising new routes to such functional biomaterials2-4. Here we present the first examples of rationally designed and fully characterized self-assembling hydrogels based on standard linear peptides with purely α-helical structures, which we call hydrogelating self-assembling fibres (hSAFs). These form spanning networks of α-helical fibrils that interact to give self-supporting physical hydrogels of >99% water content. The peptide sequences can be engineered to alter the underlying mechanism of gelation and, consequently, the hydrogel properties. Interestingly, for example, those with hydrogen-bonded networks melt upon heating, whereas those formed via hydrophobic interactions strengthen when warmed. The hSAFs are dual-peptide systems that only gel on mixing, which gives tight control over assembly5. These properties raise possibilities for using the hSAFs as substrates in cell culture. We have tested this in comparison with the widely used Matrigel substrate, and demonstrate that, like Matrigel, hSAFs support both growth and differentiation of rat adrenal pheochromocytoma cells for sustained periods in culture. 2009-07 /pmc/articles/PMC2869032/ /pubmed/19543314 http://dx.doi.org/10.1038/nmat2479 Text en
spellingShingle Article
Banwell, Eleanor F.
Abelardo, Edgardo S.
Adams, Dave J.
Birchall, Martin A.
Corrigan, Adam
Donald, Athene M.
Kirkland, Mark
Serpell, Louise C.
Butler, Michael F.
Woolfson, Derek N.
Rational design and application of responsive α-helical peptide hydrogels
title Rational design and application of responsive α-helical peptide hydrogels
title_full Rational design and application of responsive α-helical peptide hydrogels
title_fullStr Rational design and application of responsive α-helical peptide hydrogels
title_full_unstemmed Rational design and application of responsive α-helical peptide hydrogels
title_short Rational design and application of responsive α-helical peptide hydrogels
title_sort rational design and application of responsive α-helical peptide hydrogels
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2869032/
https://www.ncbi.nlm.nih.gov/pubmed/19543314
http://dx.doi.org/10.1038/nmat2479
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