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Microstructure and energy dispersive diffraction reconstruction of 3D patterns of crystallographic texture in a shark centrum
PURPOSE: Tomography using diffracted x-rays produces reconstructions mapping quantities such as crystal lattice parameter(s), crystallite size, and crystallographic texture, information quite different from that obtained with absorption or phase contrast. Diffraction tomography is used to map an ent...
Autores principales: | , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Society of Photo-Optical Instrumentation Engineers
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8809398/ https://www.ncbi.nlm.nih.gov/pubmed/35127969 http://dx.doi.org/10.1117/1.JMI.9.3.031504 |
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author | Stock, Stuart R. Morse, Paul E. Stock, Michala K. James, Kelsey C. Natanson, Lisa J. Chen, Haiyan Shevchenko, Pavel D. Maxey, Evan R. Antipova, Olga A. Park, Jun-Sang |
author_facet | Stock, Stuart R. Morse, Paul E. Stock, Michala K. James, Kelsey C. Natanson, Lisa J. Chen, Haiyan Shevchenko, Pavel D. Maxey, Evan R. Antipova, Olga A. Park, Jun-Sang |
author_sort | Stock, Stuart R. |
collection | PubMed |
description | PURPOSE: Tomography using diffracted x-rays produces reconstructions mapping quantities such as crystal lattice parameter(s), crystallite size, and crystallographic texture, information quite different from that obtained with absorption or phase contrast. Diffraction tomography is used to map an entire blue shark centrum with its double cone structure (corpora calcerea) and intermedialia (four wedges). APPROACH: Energy dispersive diffraction (EDD) and polychromatic synchrotron x-radiation at 6-BM-B, the Advanced Photon Source, were used. Different, properly oriented Bragg planes diffract different x-ray energies; these intensities are measured by one of ten energy-sensitive detectors. A pencil beam defines the irradiated volume, and a collimator before each energy-sensitive detector selects which portion of the irradiated column is sampled at any one time. Translating the specimen along [Formula: see text] , and [Formula: see text] axes produces a 3D map. RESULTS: We report 3D maps of the integrated intensity of several bioapatite reflections from the mineralized cartilage centrum of a blue shark. The [Formula: see text] axis reflection’s integrated intensities and those of a reflection with no [Formula: see text] axis component reveal that the cone wall’s bioapatite is oriented with its [Formula: see text] axes lateral, i.e., perpendicular to the backbone’s axis, and that the wedges’ bioapatite is oriented with its [Formula: see text] axes axial. Absorption microcomputed tomography (laboratory and synchrotron) and x-ray excited x-ray fluorescence maps provide higher resolution views. CONCLUSION: The bioapatite in the cone walls and wedges is oriented to resist lateral and axial deflections, respectively. Mineralized tissue samples can be mapped in 3D with EDD tomography and subsequently studied by destructive methods. |
format | Online Article Text |
id | pubmed-8809398 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Society of Photo-Optical Instrumentation Engineers |
record_format | MEDLINE/PubMed |
spelling | pubmed-88093982023-02-02 Microstructure and energy dispersive diffraction reconstruction of 3D patterns of crystallographic texture in a shark centrum Stock, Stuart R. Morse, Paul E. Stock, Michala K. James, Kelsey C. Natanson, Lisa J. Chen, Haiyan Shevchenko, Pavel D. Maxey, Evan R. Antipova, Olga A. Park, Jun-Sang J Med Imaging (Bellingham) Special Section on Hard X-Ray Tomography with Micrometer Resolution PURPOSE: Tomography using diffracted x-rays produces reconstructions mapping quantities such as crystal lattice parameter(s), crystallite size, and crystallographic texture, information quite different from that obtained with absorption or phase contrast. Diffraction tomography is used to map an entire blue shark centrum with its double cone structure (corpora calcerea) and intermedialia (four wedges). APPROACH: Energy dispersive diffraction (EDD) and polychromatic synchrotron x-radiation at 6-BM-B, the Advanced Photon Source, were used. Different, properly oriented Bragg planes diffract different x-ray energies; these intensities are measured by one of ten energy-sensitive detectors. A pencil beam defines the irradiated volume, and a collimator before each energy-sensitive detector selects which portion of the irradiated column is sampled at any one time. Translating the specimen along [Formula: see text] , and [Formula: see text] axes produces a 3D map. RESULTS: We report 3D maps of the integrated intensity of several bioapatite reflections from the mineralized cartilage centrum of a blue shark. The [Formula: see text] axis reflection’s integrated intensities and those of a reflection with no [Formula: see text] axis component reveal that the cone wall’s bioapatite is oriented with its [Formula: see text] axes lateral, i.e., perpendicular to the backbone’s axis, and that the wedges’ bioapatite is oriented with its [Formula: see text] axes axial. Absorption microcomputed tomography (laboratory and synchrotron) and x-ray excited x-ray fluorescence maps provide higher resolution views. CONCLUSION: The bioapatite in the cone walls and wedges is oriented to resist lateral and axial deflections, respectively. Mineralized tissue samples can be mapped in 3D with EDD tomography and subsequently studied by destructive methods. Society of Photo-Optical Instrumentation Engineers 2022-02-02 2022-05 /pmc/articles/PMC8809398/ /pubmed/35127969 http://dx.doi.org/10.1117/1.JMI.9.3.031504 Text en © 2022 Society of Photo-Optical Instrumentation Engineers (SPIE) |
spellingShingle | Special Section on Hard X-Ray Tomography with Micrometer Resolution Stock, Stuart R. Morse, Paul E. Stock, Michala K. James, Kelsey C. Natanson, Lisa J. Chen, Haiyan Shevchenko, Pavel D. Maxey, Evan R. Antipova, Olga A. Park, Jun-Sang Microstructure and energy dispersive diffraction reconstruction of 3D patterns of crystallographic texture in a shark centrum |
title | Microstructure and energy dispersive diffraction reconstruction of 3D patterns of crystallographic texture in a shark centrum |
title_full | Microstructure and energy dispersive diffraction reconstruction of 3D patterns of crystallographic texture in a shark centrum |
title_fullStr | Microstructure and energy dispersive diffraction reconstruction of 3D patterns of crystallographic texture in a shark centrum |
title_full_unstemmed | Microstructure and energy dispersive diffraction reconstruction of 3D patterns of crystallographic texture in a shark centrum |
title_short | Microstructure and energy dispersive diffraction reconstruction of 3D patterns of crystallographic texture in a shark centrum |
title_sort | microstructure and energy dispersive diffraction reconstruction of 3d patterns of crystallographic texture in a shark centrum |
topic | Special Section on Hard X-Ray Tomography with Micrometer Resolution |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8809398/ https://www.ncbi.nlm.nih.gov/pubmed/35127969 http://dx.doi.org/10.1117/1.JMI.9.3.031504 |
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