Cargando…

Zebrafish skeleton development: High resolution micro-CT and FIB-SEM block surface serial imaging for phenotype identification

Although bone is one of the most studied living materials, many questions about the manner in which bones form remain unresolved, including fine details of the skeletal structure during development. In this study, we monitored skeleton development of zebrafish larvae, using calcein fluorescence, hig...

Descripción completa

Detalles Bibliográficos
Autores principales: Silvent, Jeremie, Akiva, Anat, Brumfeld, Vlad, Reznikov, Natalie, Rechav, Katya, Yaniv, Karina, Addadi, Lia, Weiner, Steve
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5722281/
https://www.ncbi.nlm.nih.gov/pubmed/29220379
http://dx.doi.org/10.1371/journal.pone.0177731
_version_ 1783284976156934144
author Silvent, Jeremie
Akiva, Anat
Brumfeld, Vlad
Reznikov, Natalie
Rechav, Katya
Yaniv, Karina
Addadi, Lia
Weiner, Steve
author_facet Silvent, Jeremie
Akiva, Anat
Brumfeld, Vlad
Reznikov, Natalie
Rechav, Katya
Yaniv, Karina
Addadi, Lia
Weiner, Steve
author_sort Silvent, Jeremie
collection PubMed
description Although bone is one of the most studied living materials, many questions about the manner in which bones form remain unresolved, including fine details of the skeletal structure during development. In this study, we monitored skeleton development of zebrafish larvae, using calcein fluorescence, high-resolution micro-CT 3D images and FIB-SEM in the block surface serial imaging mode. We compared calcein staining of the skeletons of the wild type and nacre mutants, which are transparent zebrafish, with micro-CT for the first 30 days post fertilization embryos, and identified significant differences. We quantified the bone volumes and mineral contents of bones, including otoliths, during development, and showed that such developmental differences, including otolith development, could be helpful in identifying phenotypes. In addition, high-resolution imaging revealed the presence of mineralized aggregates in the notochord, before the formation of the first bone in the axial skeleton. These structures might play a role in the storage of the mineral. Our results highlight the potential of these high-resolution 3D approaches to characterize the zebrafish skeleton, which in turn could prove invaluable information for better understanding the development and the characterization of skeletal phenotypes.
format Online
Article
Text
id pubmed-5722281
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-57222812017-12-15 Zebrafish skeleton development: High resolution micro-CT and FIB-SEM block surface serial imaging for phenotype identification Silvent, Jeremie Akiva, Anat Brumfeld, Vlad Reznikov, Natalie Rechav, Katya Yaniv, Karina Addadi, Lia Weiner, Steve PLoS One Research Article Although bone is one of the most studied living materials, many questions about the manner in which bones form remain unresolved, including fine details of the skeletal structure during development. In this study, we monitored skeleton development of zebrafish larvae, using calcein fluorescence, high-resolution micro-CT 3D images and FIB-SEM in the block surface serial imaging mode. We compared calcein staining of the skeletons of the wild type and nacre mutants, which are transparent zebrafish, with micro-CT for the first 30 days post fertilization embryos, and identified significant differences. We quantified the bone volumes and mineral contents of bones, including otoliths, during development, and showed that such developmental differences, including otolith development, could be helpful in identifying phenotypes. In addition, high-resolution imaging revealed the presence of mineralized aggregates in the notochord, before the formation of the first bone in the axial skeleton. These structures might play a role in the storage of the mineral. Our results highlight the potential of these high-resolution 3D approaches to characterize the zebrafish skeleton, which in turn could prove invaluable information for better understanding the development and the characterization of skeletal phenotypes. Public Library of Science 2017-12-08 /pmc/articles/PMC5722281/ /pubmed/29220379 http://dx.doi.org/10.1371/journal.pone.0177731 Text en © 2017 Silvent et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Silvent, Jeremie
Akiva, Anat
Brumfeld, Vlad
Reznikov, Natalie
Rechav, Katya
Yaniv, Karina
Addadi, Lia
Weiner, Steve
Zebrafish skeleton development: High resolution micro-CT and FIB-SEM block surface serial imaging for phenotype identification
title Zebrafish skeleton development: High resolution micro-CT and FIB-SEM block surface serial imaging for phenotype identification
title_full Zebrafish skeleton development: High resolution micro-CT and FIB-SEM block surface serial imaging for phenotype identification
title_fullStr Zebrafish skeleton development: High resolution micro-CT and FIB-SEM block surface serial imaging for phenotype identification
title_full_unstemmed Zebrafish skeleton development: High resolution micro-CT and FIB-SEM block surface serial imaging for phenotype identification
title_short Zebrafish skeleton development: High resolution micro-CT and FIB-SEM block surface serial imaging for phenotype identification
title_sort zebrafish skeleton development: high resolution micro-ct and fib-sem block surface serial imaging for phenotype identification
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5722281/
https://www.ncbi.nlm.nih.gov/pubmed/29220379
http://dx.doi.org/10.1371/journal.pone.0177731
work_keys_str_mv AT silventjeremie zebrafishskeletondevelopmenthighresolutionmicroctandfibsemblocksurfaceserialimagingforphenotypeidentification
AT akivaanat zebrafishskeletondevelopmenthighresolutionmicroctandfibsemblocksurfaceserialimagingforphenotypeidentification
AT brumfeldvlad zebrafishskeletondevelopmenthighresolutionmicroctandfibsemblocksurfaceserialimagingforphenotypeidentification
AT reznikovnatalie zebrafishskeletondevelopmenthighresolutionmicroctandfibsemblocksurfaceserialimagingforphenotypeidentification
AT rechavkatya zebrafishskeletondevelopmenthighresolutionmicroctandfibsemblocksurfaceserialimagingforphenotypeidentification
AT yanivkarina zebrafishskeletondevelopmenthighresolutionmicroctandfibsemblocksurfaceserialimagingforphenotypeidentification
AT addadilia zebrafishskeletondevelopmenthighresolutionmicroctandfibsemblocksurfaceserialimagingforphenotypeidentification
AT weinersteve zebrafishskeletondevelopmenthighresolutionmicroctandfibsemblocksurfaceserialimagingforphenotypeidentification