Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization

Understanding the mechanisms responsible for generating different phases and morphologies of calcium phosphate by elastin-like recombinamers is supreme for bioengineering of advanced multifunctional materials. The generation of such multifunctional hybrid materials depends on the properties of their...

Full description

Bibliographic Details
Main Authors: Mohamed Hamed Misbah, Mercedes Santos, Luis Quintanilla, Christina Günter, Matilde Alonso, Andreas Taubert, José Carlos Rodríguez-Cabello
Format: Article
Language:English
Published: Beilstein-Institut 2017-04-01
Series:Beilstein Journal of Nanotechnology
Subjects:
Online Access:https://doi.org/10.3762/bjnano.8.80
id doaj-4f35f29935ce479b924f8a6f0bd13a72
record_format Article
spelling doaj-4f35f29935ce479b924f8a6f0bd13a722020-11-25T00:59:40ZengBeilstein-InstitutBeilstein Journal of Nanotechnology2190-42862017-04-018177278310.3762/bjnano.8.802190-4286-8-80Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralizationMohamed Hamed Misbah0Mercedes Santos1Luis Quintanilla2Christina Günter3Matilde Alonso4Andreas Taubert5José Carlos Rodríguez-Cabello6G.I.R. Bioforge, University of Valladolid, CIBER-BBN, Paseo de Belén 19, 47011 Valladolid, SpainG.I.R. Bioforge, University of Valladolid, CIBER-BBN, Paseo de Belén 19, 47011 Valladolid, SpainG.I.R. Bioforge, University of Valladolid, CIBER-BBN, Paseo de Belén 19, 47011 Valladolid, SpainInstitute of Earth and Environmental Sciences, University of Potsdam, D-14476 Potsdam, GermanyG.I.R. Bioforge, University of Valladolid, CIBER-BBN, Paseo de Belén 19, 47011 Valladolid, SpainInstitute of Chemistry, University of Potsdam, D-14476 Potsdam, GermanyG.I.R. Bioforge, University of Valladolid, CIBER-BBN, Paseo de Belén 19, 47011 Valladolid, SpainUnderstanding the mechanisms responsible for generating different phases and morphologies of calcium phosphate by elastin-like recombinamers is supreme for bioengineering of advanced multifunctional materials. The generation of such multifunctional hybrid materials depends on the properties of their counterparts and the way in which they are assembled. The success of this assembly depends on the different approaches used, such as recombinant DNA technology and click chemistry. In the present work, an elastin-like recombinamer bearing lysine amino acids distributed along the recombinamer chain has been cross-linked via Huisgen [2 + 3] cycloaddition. The recombinamer contains the SNA15 peptide domains inspired by salivary statherin, a peptide epitope known to specifically bind to and nucleate calcium phosphate. The benefit of using click chemistry is that the hybrid elastin-like-statherin recombinamers cross-link without losing their fibrillar structure. Mineralization of the resulting hybrid elastin-like-statherin recombinamer hydrogels with calcium phosphate is described. Thus, two different hydroxyapatite morphologies (cauliflower- and plate-like) have been formed. Overall, this study shows that crosslinking elastin-like recombinamers leads to interesting matrix materials for the generation of calcium phosphate composites with potential applications as biomaterials.https://doi.org/10.3762/bjnano.8.80calcium phosphateelastin-like recombinamershydroxyapatitemineralizationSNA15
collection DOAJ
language English
format Article
sources DOAJ
author Mohamed Hamed Misbah
Mercedes Santos
Luis Quintanilla
Christina Günter
Matilde Alonso
Andreas Taubert
José Carlos Rodríguez-Cabello
spellingShingle Mohamed Hamed Misbah
Mercedes Santos
Luis Quintanilla
Christina Günter
Matilde Alonso
Andreas Taubert
José Carlos Rodríguez-Cabello
Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization
Beilstein Journal of Nanotechnology
calcium phosphate
elastin-like recombinamers
hydroxyapatite
mineralization
SNA15
author_facet Mohamed Hamed Misbah
Mercedes Santos
Luis Quintanilla
Christina Günter
Matilde Alonso
Andreas Taubert
José Carlos Rodríguez-Cabello
author_sort Mohamed Hamed Misbah
title Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization
title_short Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization
title_full Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization
title_fullStr Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization
title_full_unstemmed Recombinant DNA technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization
title_sort recombinant dna technology and click chemistry: a powerful combination for generating a hybrid elastin-like-statherin hydrogel to control calcium phosphate mineralization
publisher Beilstein-Institut
series Beilstein Journal of Nanotechnology
issn 2190-4286
publishDate 2017-04-01
description Understanding the mechanisms responsible for generating different phases and morphologies of calcium phosphate by elastin-like recombinamers is supreme for bioengineering of advanced multifunctional materials. The generation of such multifunctional hybrid materials depends on the properties of their counterparts and the way in which they are assembled. The success of this assembly depends on the different approaches used, such as recombinant DNA technology and click chemistry. In the present work, an elastin-like recombinamer bearing lysine amino acids distributed along the recombinamer chain has been cross-linked via Huisgen [2 + 3] cycloaddition. The recombinamer contains the SNA15 peptide domains inspired by salivary statherin, a peptide epitope known to specifically bind to and nucleate calcium phosphate. The benefit of using click chemistry is that the hybrid elastin-like-statherin recombinamers cross-link without losing their fibrillar structure. Mineralization of the resulting hybrid elastin-like-statherin recombinamer hydrogels with calcium phosphate is described. Thus, two different hydroxyapatite morphologies (cauliflower- and plate-like) have been formed. Overall, this study shows that crosslinking elastin-like recombinamers leads to interesting matrix materials for the generation of calcium phosphate composites with potential applications as biomaterials.
topic calcium phosphate
elastin-like recombinamers
hydroxyapatite
mineralization
SNA15
url https://doi.org/10.3762/bjnano.8.80
work_keys_str_mv AT mohamedhamedmisbah recombinantdnatechnologyandclickchemistryapowerfulcombinationforgeneratingahybridelastinlikestatherinhydrogeltocontrolcalciumphosphatemineralization
AT mercedessantos recombinantdnatechnologyandclickchemistryapowerfulcombinationforgeneratingahybridelastinlikestatherinhydrogeltocontrolcalciumphosphatemineralization
AT luisquintanilla recombinantdnatechnologyandclickchemistryapowerfulcombinationforgeneratingahybridelastinlikestatherinhydrogeltocontrolcalciumphosphatemineralization
AT christinagunter recombinantdnatechnologyandclickchemistryapowerfulcombinationforgeneratingahybridelastinlikestatherinhydrogeltocontrolcalciumphosphatemineralization
AT matildealonso recombinantdnatechnologyandclickchemistryapowerfulcombinationforgeneratingahybridelastinlikestatherinhydrogeltocontrolcalciumphosphatemineralization
AT andreastaubert recombinantdnatechnologyandclickchemistryapowerfulcombinationforgeneratingahybridelastinlikestatherinhydrogeltocontrolcalciumphosphatemineralization
AT josecarlosrodriguezcabello recombinantdnatechnologyandclickchemistryapowerfulcombinationforgeneratingahybridelastinlikestatherinhydrogeltocontrolcalciumphosphatemineralization
_version_ 1725216847840673792