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Lattice Shrinkage by Incorporation of Recombinant Starmaker‐Like Protein within Bioinspired Calcium Carbonate Crystals

The biological mediation of mineral formation (biomineralization) is realized through diverse organic macromolecules that guide this process in a spatial and temporal manner. Although the role of these molecules in biomineralization is being gradually revealed, the molecular basis of their regulator...

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Autores principales: Różycka, Mirosława, Coronado, Ismael, Brach, Katarzyna, Olesiak‐Bańska, Joanna, Samoć, Marek, Zarębski, Mirosław, Dobrucki, Jerzy, Ptak, Maciej, Weber, Eva, Polishchuk, Iryna, Pokroy, Boaz, Stolarski, Jarosław, Ożyhar, Andrzej
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6790713/
https://www.ncbi.nlm.nih.gov/pubmed/31241793
http://dx.doi.org/10.1002/chem.201902157
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author Różycka, Mirosława
Coronado, Ismael
Brach, Katarzyna
Olesiak‐Bańska, Joanna
Samoć, Marek
Zarębski, Mirosław
Dobrucki, Jerzy
Ptak, Maciej
Weber, Eva
Polishchuk, Iryna
Pokroy, Boaz
Stolarski, Jarosław
Ożyhar, Andrzej
author_facet Różycka, Mirosława
Coronado, Ismael
Brach, Katarzyna
Olesiak‐Bańska, Joanna
Samoć, Marek
Zarębski, Mirosław
Dobrucki, Jerzy
Ptak, Maciej
Weber, Eva
Polishchuk, Iryna
Pokroy, Boaz
Stolarski, Jarosław
Ożyhar, Andrzej
author_sort Różycka, Mirosława
collection PubMed
description The biological mediation of mineral formation (biomineralization) is realized through diverse organic macromolecules that guide this process in a spatial and temporal manner. Although the role of these molecules in biomineralization is being gradually revealed, the molecular basis of their regulatory function is still poorly understood. In this study, the incorporation and distribution of the model intrinsically disordered starmaker‐like (Stm‐l) protein, which is active in fish otoliths biomineralization, within calcium carbonate crystals, is revealed. Stm‐l promotes crystal nucleation and anisotropic tailoring of crystal morphology. Intracrystalline incorporation of Stm‐l protein unexpectedly results in shrinkage (and not expansion, as commonly described in biomineral and bioinspired crystals) of the crystal lattice volume, which is described herein, for the first time, for bioinspired mineralization. A ring pattern was observed in crystals grown for 48 h; this was composed of a protein‐enriched region flanked by protein‐depleted regions. It can be explained as a result of the Ostwald‐like ripening process and intrinsic properties of Stm‐l, and bears some analogy to the daily growth layers of the otolith.
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spelling pubmed-67907132019-10-21 Lattice Shrinkage by Incorporation of Recombinant Starmaker‐Like Protein within Bioinspired Calcium Carbonate Crystals Różycka, Mirosława Coronado, Ismael Brach, Katarzyna Olesiak‐Bańska, Joanna Samoć, Marek Zarębski, Mirosław Dobrucki, Jerzy Ptak, Maciej Weber, Eva Polishchuk, Iryna Pokroy, Boaz Stolarski, Jarosław Ożyhar, Andrzej Chemistry Full Papers The biological mediation of mineral formation (biomineralization) is realized through diverse organic macromolecules that guide this process in a spatial and temporal manner. Although the role of these molecules in biomineralization is being gradually revealed, the molecular basis of their regulatory function is still poorly understood. In this study, the incorporation and distribution of the model intrinsically disordered starmaker‐like (Stm‐l) protein, which is active in fish otoliths biomineralization, within calcium carbonate crystals, is revealed. Stm‐l promotes crystal nucleation and anisotropic tailoring of crystal morphology. Intracrystalline incorporation of Stm‐l protein unexpectedly results in shrinkage (and not expansion, as commonly described in biomineral and bioinspired crystals) of the crystal lattice volume, which is described herein, for the first time, for bioinspired mineralization. A ring pattern was observed in crystals grown for 48 h; this was composed of a protein‐enriched region flanked by protein‐depleted regions. It can be explained as a result of the Ostwald‐like ripening process and intrinsic properties of Stm‐l, and bears some analogy to the daily growth layers of the otolith. John Wiley and Sons Inc. 2019-08-12 2019-10-01 /pmc/articles/PMC6790713/ /pubmed/31241793 http://dx.doi.org/10.1002/chem.201902157 Text en © 2019 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Full Papers
Różycka, Mirosława
Coronado, Ismael
Brach, Katarzyna
Olesiak‐Bańska, Joanna
Samoć, Marek
Zarębski, Mirosław
Dobrucki, Jerzy
Ptak, Maciej
Weber, Eva
Polishchuk, Iryna
Pokroy, Boaz
Stolarski, Jarosław
Ożyhar, Andrzej
Lattice Shrinkage by Incorporation of Recombinant Starmaker‐Like Protein within Bioinspired Calcium Carbonate Crystals
title Lattice Shrinkage by Incorporation of Recombinant Starmaker‐Like Protein within Bioinspired Calcium Carbonate Crystals
title_full Lattice Shrinkage by Incorporation of Recombinant Starmaker‐Like Protein within Bioinspired Calcium Carbonate Crystals
title_fullStr Lattice Shrinkage by Incorporation of Recombinant Starmaker‐Like Protein within Bioinspired Calcium Carbonate Crystals
title_full_unstemmed Lattice Shrinkage by Incorporation of Recombinant Starmaker‐Like Protein within Bioinspired Calcium Carbonate Crystals
title_short Lattice Shrinkage by Incorporation of Recombinant Starmaker‐Like Protein within Bioinspired Calcium Carbonate Crystals
title_sort lattice shrinkage by incorporation of recombinant starmaker‐like protein within bioinspired calcium carbonate crystals
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6790713/
https://www.ncbi.nlm.nih.gov/pubmed/31241793
http://dx.doi.org/10.1002/chem.201902157
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