Cargando…

Binding Interactions of Keratin-Based Hair Fiber Extract to Gold, Keratin, and BMP-2

Hair-derived keratin biomaterials composed mostly of reduced keratin proteins (kerateines) have demonstrated their utility as carriers of biologics and drugs for tissue engineering. Electrostatic forces between negatively-charged keratins and biologic macromolecules allow for effective drug retentio...

Descripción completa

Detalles Bibliográficos
Autores principales: de Guzman, Roche C., Tsuda, Shanel M., Ton, Minh-Thi N., Zhang, Xiao, Esker, Alan R., Van Dyke, Mark E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4552821/
https://www.ncbi.nlm.nih.gov/pubmed/26317522
http://dx.doi.org/10.1371/journal.pone.0137233
_version_ 1782387791479439360
author de Guzman, Roche C.
Tsuda, Shanel M.
Ton, Minh-Thi N.
Zhang, Xiao
Esker, Alan R.
Van Dyke, Mark E.
author_facet de Guzman, Roche C.
Tsuda, Shanel M.
Ton, Minh-Thi N.
Zhang, Xiao
Esker, Alan R.
Van Dyke, Mark E.
author_sort de Guzman, Roche C.
collection PubMed
description Hair-derived keratin biomaterials composed mostly of reduced keratin proteins (kerateines) have demonstrated their utility as carriers of biologics and drugs for tissue engineering. Electrostatic forces between negatively-charged keratins and biologic macromolecules allow for effective drug retention; attraction to positively-charged growth factors like bone morphogenetic protein 2 (BMP-2) has been used as a strategy for osteoinduction. In this study, the intermolecular surface and bulk interaction properties of kerateines were investigated. Thiol-rich kerateines were chemisorbed onto gold substrates to form an irreversible 2-nm rigid layer for surface plasmon resonance analysis. Kerateine-to-kerateine cohesion was observed in pH-neutral water with an equilibrium dissociation constant (K(D)) of 1.8 × 10(−4) M, indicating that non-coulombic attractive forces (i.e. hydrophobic and van der Waals) were at work. The association of BMP-2 to kerateine was found to be greater (K(D) = 1.1 × 10(−7) M), within the range of specific binding. Addition of salts (phosphate-buffered saline; PBS) shortened the Debye length or the electrostatic field influence which weakened the kerateine-BMP-2 binding (K(D) = 3.2 × 10(−5) M). BMP-2 in bulk kerateine gels provided a limited release in PBS (~ 10% dissociation in 4 weeks), suggesting that electrostatic intermolecular attraction was significant to retain BMP-2 within the keratin matrix. Complete dissociation between kerateine and BMP-2 occurred when the PBS pH was lowered (to 4.5), below the keratin isoelectric point of 5.3. This phenomenon can be attributed to the protonation of keratin at a lower pH, leading to positive-positive repulsion. Therefore, the dynamics of kerateine-BMP-2 binding is highly dependent on pH and salt concentration, as well as on BMP-2 solubility at different pH and molarity. The study findings may contribute to our understanding of the release kinetics of drugs from keratin biomaterials and allow for the development of better, more clinically relevant BMP-2-conjugated systems for bone repair and regeneration.
format Online
Article
Text
id pubmed-4552821
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-45528212015-09-10 Binding Interactions of Keratin-Based Hair Fiber Extract to Gold, Keratin, and BMP-2 de Guzman, Roche C. Tsuda, Shanel M. Ton, Minh-Thi N. Zhang, Xiao Esker, Alan R. Van Dyke, Mark E. PLoS One Research Article Hair-derived keratin biomaterials composed mostly of reduced keratin proteins (kerateines) have demonstrated their utility as carriers of biologics and drugs for tissue engineering. Electrostatic forces between negatively-charged keratins and biologic macromolecules allow for effective drug retention; attraction to positively-charged growth factors like bone morphogenetic protein 2 (BMP-2) has been used as a strategy for osteoinduction. In this study, the intermolecular surface and bulk interaction properties of kerateines were investigated. Thiol-rich kerateines were chemisorbed onto gold substrates to form an irreversible 2-nm rigid layer for surface plasmon resonance analysis. Kerateine-to-kerateine cohesion was observed in pH-neutral water with an equilibrium dissociation constant (K(D)) of 1.8 × 10(−4) M, indicating that non-coulombic attractive forces (i.e. hydrophobic and van der Waals) were at work. The association of BMP-2 to kerateine was found to be greater (K(D) = 1.1 × 10(−7) M), within the range of specific binding. Addition of salts (phosphate-buffered saline; PBS) shortened the Debye length or the electrostatic field influence which weakened the kerateine-BMP-2 binding (K(D) = 3.2 × 10(−5) M). BMP-2 in bulk kerateine gels provided a limited release in PBS (~ 10% dissociation in 4 weeks), suggesting that electrostatic intermolecular attraction was significant to retain BMP-2 within the keratin matrix. Complete dissociation between kerateine and BMP-2 occurred when the PBS pH was lowered (to 4.5), below the keratin isoelectric point of 5.3. This phenomenon can be attributed to the protonation of keratin at a lower pH, leading to positive-positive repulsion. Therefore, the dynamics of kerateine-BMP-2 binding is highly dependent on pH and salt concentration, as well as on BMP-2 solubility at different pH and molarity. The study findings may contribute to our understanding of the release kinetics of drugs from keratin biomaterials and allow for the development of better, more clinically relevant BMP-2-conjugated systems for bone repair and regeneration. Public Library of Science 2015-08-28 /pmc/articles/PMC4552821/ /pubmed/26317522 http://dx.doi.org/10.1371/journal.pone.0137233 Text en © 2015 de Guzman et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
de Guzman, Roche C.
Tsuda, Shanel M.
Ton, Minh-Thi N.
Zhang, Xiao
Esker, Alan R.
Van Dyke, Mark E.
Binding Interactions of Keratin-Based Hair Fiber Extract to Gold, Keratin, and BMP-2
title Binding Interactions of Keratin-Based Hair Fiber Extract to Gold, Keratin, and BMP-2
title_full Binding Interactions of Keratin-Based Hair Fiber Extract to Gold, Keratin, and BMP-2
title_fullStr Binding Interactions of Keratin-Based Hair Fiber Extract to Gold, Keratin, and BMP-2
title_full_unstemmed Binding Interactions of Keratin-Based Hair Fiber Extract to Gold, Keratin, and BMP-2
title_short Binding Interactions of Keratin-Based Hair Fiber Extract to Gold, Keratin, and BMP-2
title_sort binding interactions of keratin-based hair fiber extract to gold, keratin, and bmp-2
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4552821/
https://www.ncbi.nlm.nih.gov/pubmed/26317522
http://dx.doi.org/10.1371/journal.pone.0137233
work_keys_str_mv AT deguzmanrochec bindinginteractionsofkeratinbasedhairfiberextracttogoldkeratinandbmp2
AT tsudashanelm bindinginteractionsofkeratinbasedhairfiberextracttogoldkeratinandbmp2
AT tonminhthin bindinginteractionsofkeratinbasedhairfiberextracttogoldkeratinandbmp2
AT zhangxiao bindinginteractionsofkeratinbasedhairfiberextracttogoldkeratinandbmp2
AT eskeralanr bindinginteractionsofkeratinbasedhairfiberextracttogoldkeratinandbmp2
AT vandykemarke bindinginteractionsofkeratinbasedhairfiberextracttogoldkeratinandbmp2