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Understanding the Adhesion Mechanism of Hydroxyapatite-Binding Peptide

[Image: see text] Understanding the interactions between the protein collagen and hydroxyapatite is of high importance for understanding biomineralization and bone formation. Here, we undertook a reductionist approach and studied the interactions between a short peptide and hydroxyapatite. The pepti...

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Autores principales: Duanis-Assaf, Tal, Hu, Tan, Lavie, Maayan, Zhang, Zhuo, Reches, Meital
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8793143/
https://www.ncbi.nlm.nih.gov/pubmed/34995466
http://dx.doi.org/10.1021/acs.langmuir.1c02293
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author Duanis-Assaf, Tal
Hu, Tan
Lavie, Maayan
Zhang, Zhuo
Reches, Meital
author_facet Duanis-Assaf, Tal
Hu, Tan
Lavie, Maayan
Zhang, Zhuo
Reches, Meital
author_sort Duanis-Assaf, Tal
collection PubMed
description [Image: see text] Understanding the interactions between the protein collagen and hydroxyapatite is of high importance for understanding biomineralization and bone formation. Here, we undertook a reductionist approach and studied the interactions between a short peptide and hydroxyapatite. The peptide was selected from a phage-display library for its high affinity to hydroxyapatite. To study its interactions with hydroxyapatite, we performed an alanine scan to determine the contribution of each residue. The interactions of the different peptide derivatives were studied using a quartz crystal microbalance with dissipation monitoring and with single-molecule force spectroscopy by atomic force microscopy. Our results suggest that the peptide binds via electrostatic interactions between cationic moieties of the peptide and the negatively charged groups on the crystal surface. Furthermore, our findings show that cationic residues have a crucial role in binding. Using molecular dynamics simulations, we show that the peptide structure is a contributing factor to the adhesion mechanism. These results suggest that even small conformational changes can have a significant effect on peptide adhesion. We suggest that a bent structure of the peptide allows it to strongly bind hydroxyapatite. The results presented in this study improve our understanding of peptide adhesion to hydroxyapatite. On top of physical interactions between the peptide and the surface, peptide structure contributes to adhesion. Unveiling these processes contributes to our understanding of more complex biological systems. Furthermore, it may help in the design of de novo peptides to be used as functional groups for modifying the surface of hydroxyapatite.
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spelling pubmed-87931432022-01-28 Understanding the Adhesion Mechanism of Hydroxyapatite-Binding Peptide Duanis-Assaf, Tal Hu, Tan Lavie, Maayan Zhang, Zhuo Reches, Meital Langmuir [Image: see text] Understanding the interactions between the protein collagen and hydroxyapatite is of high importance for understanding biomineralization and bone formation. Here, we undertook a reductionist approach and studied the interactions between a short peptide and hydroxyapatite. The peptide was selected from a phage-display library for its high affinity to hydroxyapatite. To study its interactions with hydroxyapatite, we performed an alanine scan to determine the contribution of each residue. The interactions of the different peptide derivatives were studied using a quartz crystal microbalance with dissipation monitoring and with single-molecule force spectroscopy by atomic force microscopy. Our results suggest that the peptide binds via electrostatic interactions between cationic moieties of the peptide and the negatively charged groups on the crystal surface. Furthermore, our findings show that cationic residues have a crucial role in binding. Using molecular dynamics simulations, we show that the peptide structure is a contributing factor to the adhesion mechanism. These results suggest that even small conformational changes can have a significant effect on peptide adhesion. We suggest that a bent structure of the peptide allows it to strongly bind hydroxyapatite. The results presented in this study improve our understanding of peptide adhesion to hydroxyapatite. On top of physical interactions between the peptide and the surface, peptide structure contributes to adhesion. Unveiling these processes contributes to our understanding of more complex biological systems. Furthermore, it may help in the design of de novo peptides to be used as functional groups for modifying the surface of hydroxyapatite. American Chemical Society 2022-01-07 2022-01-25 /pmc/articles/PMC8793143/ /pubmed/34995466 http://dx.doi.org/10.1021/acs.langmuir.1c02293 Text en © 2022 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Duanis-Assaf, Tal
Hu, Tan
Lavie, Maayan
Zhang, Zhuo
Reches, Meital
Understanding the Adhesion Mechanism of Hydroxyapatite-Binding Peptide
title Understanding the Adhesion Mechanism of Hydroxyapatite-Binding Peptide
title_full Understanding the Adhesion Mechanism of Hydroxyapatite-Binding Peptide
title_fullStr Understanding the Adhesion Mechanism of Hydroxyapatite-Binding Peptide
title_full_unstemmed Understanding the Adhesion Mechanism of Hydroxyapatite-Binding Peptide
title_short Understanding the Adhesion Mechanism of Hydroxyapatite-Binding Peptide
title_sort understanding the adhesion mechanism of hydroxyapatite-binding peptide
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8793143/
https://www.ncbi.nlm.nih.gov/pubmed/34995466
http://dx.doi.org/10.1021/acs.langmuir.1c02293
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