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A Novel Hyperthermostable Recombinant Protein Nanocage

BACKGROUND: Ferritin has an important role in iron storage in the cells, and due to its nanocage structure and self-assembly properties, it has wide application prospects in nanobiotechnology. METHODS: The maize (Zea mays) ferritin gene ZmFer1 was cloned and expressed in Escherichia coli BL21 (DE3)...

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Autores principales: Ahmadyousefi, Yaghoub, Saidijam, Massoud, Amirheidari, Bagher, Rahbarizadeh, Fatehmeh, Soleimani, Meysam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Pasteur Institute of Iran 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9841219/
https://www.ncbi.nlm.nih.gov/pubmed/36437775
http://dx.doi.org/10.52547/ibj.3839
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author Ahmadyousefi, Yaghoub
Saidijam, Massoud
Amirheidari, Bagher
Rahbarizadeh, Fatehmeh
Soleimani, Meysam
author_facet Ahmadyousefi, Yaghoub
Saidijam, Massoud
Amirheidari, Bagher
Rahbarizadeh, Fatehmeh
Soleimani, Meysam
author_sort Ahmadyousefi, Yaghoub
collection PubMed
description BACKGROUND: Ferritin has an important role in iron storage in the cells, and due to its nanocage structure and self-assembly properties, it has wide application prospects in nanobiotechnology. METHODS: The maize (Zea mays) ferritin gene ZmFer1 was cloned and expressed in Escherichia coli BL21 (DE3) for the first time. Change in macromolecular structure of ZmFer1 ferritin due to heat treatment was investigated using native PAGE electrophoresis, DLS, and TEM. Change in the secondary structures of the protein was evaluated using CD spectroscopy. Moreover, alteration in the conformation of the protein was evaluated using UV-absorption spectra and intrinsic fluorescence spectra. The T(m) of ZmFer1 was obtained using DSC. Finally, the effect of heat on the function of ZmFer1 was assessed by iron loading ability. RESULTS: The purified ZmFer1 protein showed a homopolymer nanocage structure. The results of native PAGE electrophoresis, DLS, and TEM techniques showed that ZmFer1 protein nanocage is stable to heat treatment up to 90 °C, and some of the protein nanocages retain their macromolecular structures even at 100 °C in liquid aqueous solution. Based on the DSC results, ZmFer1 protein nanocage had a T(m) of 81.9 °C. After treatment at 100 °C, stable ZmFer1 protein nanocages were able to store iron atoms. CONCLUSION: Recombinant ZmFer1 ferritin with a T(m) > 80°C is a hyperthermostable protein nanocage. The results of this study are beneficial for the development of protein nanocages that are stable under extreme temperature conditions, as well as application of ZmFer1 in nanobiotechnology, biomaterials, and biomedical fields.
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spelling pubmed-98412192023-01-24 A Novel Hyperthermostable Recombinant Protein Nanocage Ahmadyousefi, Yaghoub Saidijam, Massoud Amirheidari, Bagher Rahbarizadeh, Fatehmeh Soleimani, Meysam Iran Biomed J Full Length BACKGROUND: Ferritin has an important role in iron storage in the cells, and due to its nanocage structure and self-assembly properties, it has wide application prospects in nanobiotechnology. METHODS: The maize (Zea mays) ferritin gene ZmFer1 was cloned and expressed in Escherichia coli BL21 (DE3) for the first time. Change in macromolecular structure of ZmFer1 ferritin due to heat treatment was investigated using native PAGE electrophoresis, DLS, and TEM. Change in the secondary structures of the protein was evaluated using CD spectroscopy. Moreover, alteration in the conformation of the protein was evaluated using UV-absorption spectra and intrinsic fluorescence spectra. The T(m) of ZmFer1 was obtained using DSC. Finally, the effect of heat on the function of ZmFer1 was assessed by iron loading ability. RESULTS: The purified ZmFer1 protein showed a homopolymer nanocage structure. The results of native PAGE electrophoresis, DLS, and TEM techniques showed that ZmFer1 protein nanocage is stable to heat treatment up to 90 °C, and some of the protein nanocages retain their macromolecular structures even at 100 °C in liquid aqueous solution. Based on the DSC results, ZmFer1 protein nanocage had a T(m) of 81.9 °C. After treatment at 100 °C, stable ZmFer1 protein nanocages were able to store iron atoms. CONCLUSION: Recombinant ZmFer1 ferritin with a T(m) > 80°C is a hyperthermostable protein nanocage. The results of this study are beneficial for the development of protein nanocages that are stable under extreme temperature conditions, as well as application of ZmFer1 in nanobiotechnology, biomaterials, and biomedical fields. Pasteur Institute of Iran 2022-11 2022-10-29 /pmc/articles/PMC9841219/ /pubmed/36437775 http://dx.doi.org/10.52547/ibj.3839 Text en https://creativecommons.org/licenses/by/3.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License, (http://creativecommons.org/licenses/by/3.0/ (https://creativecommons.org/licenses/by/3.0/) ) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Length
Ahmadyousefi, Yaghoub
Saidijam, Massoud
Amirheidari, Bagher
Rahbarizadeh, Fatehmeh
Soleimani, Meysam
A Novel Hyperthermostable Recombinant Protein Nanocage
title A Novel Hyperthermostable Recombinant Protein Nanocage
title_full A Novel Hyperthermostable Recombinant Protein Nanocage
title_fullStr A Novel Hyperthermostable Recombinant Protein Nanocage
title_full_unstemmed A Novel Hyperthermostable Recombinant Protein Nanocage
title_short A Novel Hyperthermostable Recombinant Protein Nanocage
title_sort novel hyperthermostable recombinant protein nanocage
topic Full Length
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9841219/
https://www.ncbi.nlm.nih.gov/pubmed/36437775
http://dx.doi.org/10.52547/ibj.3839
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