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3D morphology of the human hepatic ferritin mineral core: New evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images

Ferritin, the major iron storage protein, has dual functions; it sequesters redox activity of intracellular iron and facilitates iron turn-over. Here we present high angle annular dark field (HAADF) images from individual hepatic ferritin cores within tissue sections, these images were obtained usin...

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Autores principales: Pan, Ying-Hsi, Sader, Kasim, Powell, Jonathan J., Bleloch, Andrew, Gass, Mhairi, Trinick, John, Warley, Alice, Li, Andy, Brydson, Rik, Brown, Andy
Formato: Texto
Lenguaje:English
Publicado: Academic Press 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2832756/
https://www.ncbi.nlm.nih.gov/pubmed/19116170
http://dx.doi.org/10.1016/j.jsb.2008.12.001
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author Pan, Ying-Hsi
Sader, Kasim
Powell, Jonathan J.
Bleloch, Andrew
Gass, Mhairi
Trinick, John
Warley, Alice
Li, Andy
Brydson, Rik
Brown, Andy
author_facet Pan, Ying-Hsi
Sader, Kasim
Powell, Jonathan J.
Bleloch, Andrew
Gass, Mhairi
Trinick, John
Warley, Alice
Li, Andy
Brydson, Rik
Brown, Andy
author_sort Pan, Ying-Hsi
collection PubMed
description Ferritin, the major iron storage protein, has dual functions; it sequesters redox activity of intracellular iron and facilitates iron turn-over. Here we present high angle annular dark field (HAADF) images from individual hepatic ferritin cores within tissue sections, these images were obtained using spherical aberration corrected scanning transmission electron microscopy (STEM) under controlled electron fluence. HAADF images of the cores suggest a cubic morphology and a polycrystalline (ferrihydrite) subunit structure that is not evident in equivalent bright field images. By calibrating contrast levels in the HAADF images using quantitative electron energy loss spectroscopy, we have estimated the absolute iron content in any one core, and produced a three dimensional reconstruction of the average core morphology. The core is composed of up to eight subunits, consistent with the eight channels in the protein shell that deliver iron to the central cavity. We find no evidence of a crystallographic orientation relationship between core subunits. Our results confirm that the ferritin protein shell acts as a template for core morphology and within the core, small (∼2 nm), surface-disordered ferrihydrite subunits connect to leave a low density centre and a high surface area that would allow rapid turn-over of iron in biological systems.
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spelling pubmed-28327562010-03-29 3D morphology of the human hepatic ferritin mineral core: New evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images Pan, Ying-Hsi Sader, Kasim Powell, Jonathan J. Bleloch, Andrew Gass, Mhairi Trinick, John Warley, Alice Li, Andy Brydson, Rik Brown, Andy J Struct Biol Article Ferritin, the major iron storage protein, has dual functions; it sequesters redox activity of intracellular iron and facilitates iron turn-over. Here we present high angle annular dark field (HAADF) images from individual hepatic ferritin cores within tissue sections, these images were obtained using spherical aberration corrected scanning transmission electron microscopy (STEM) under controlled electron fluence. HAADF images of the cores suggest a cubic morphology and a polycrystalline (ferrihydrite) subunit structure that is not evident in equivalent bright field images. By calibrating contrast levels in the HAADF images using quantitative electron energy loss spectroscopy, we have estimated the absolute iron content in any one core, and produced a three dimensional reconstruction of the average core morphology. The core is composed of up to eight subunits, consistent with the eight channels in the protein shell that deliver iron to the central cavity. We find no evidence of a crystallographic orientation relationship between core subunits. Our results confirm that the ferritin protein shell acts as a template for core morphology and within the core, small (∼2 nm), surface-disordered ferrihydrite subunits connect to leave a low density centre and a high surface area that would allow rapid turn-over of iron in biological systems. Academic Press 2009-04 /pmc/articles/PMC2832756/ /pubmed/19116170 http://dx.doi.org/10.1016/j.jsb.2008.12.001 Text en © 2009 Elsevier Inc. https://creativecommons.org/licenses/by/3.0/ Open Access under CC BY 3.0 (https://creativecommons.org/licenses/by/3.0/) license
spellingShingle Article
Pan, Ying-Hsi
Sader, Kasim
Powell, Jonathan J.
Bleloch, Andrew
Gass, Mhairi
Trinick, John
Warley, Alice
Li, Andy
Brydson, Rik
Brown, Andy
3D morphology of the human hepatic ferritin mineral core: New evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images
title 3D morphology of the human hepatic ferritin mineral core: New evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images
title_full 3D morphology of the human hepatic ferritin mineral core: New evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images
title_fullStr 3D morphology of the human hepatic ferritin mineral core: New evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images
title_full_unstemmed 3D morphology of the human hepatic ferritin mineral core: New evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images
title_short 3D morphology of the human hepatic ferritin mineral core: New evidence for a subunit structure revealed by single particle analysis of HAADF-STEM images
title_sort 3d morphology of the human hepatic ferritin mineral core: new evidence for a subunit structure revealed by single particle analysis of haadf-stem images
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2832756/
https://www.ncbi.nlm.nih.gov/pubmed/19116170
http://dx.doi.org/10.1016/j.jsb.2008.12.001
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