Cargando…

Multi-Scale Cortical Bone Traits Vary in Two Mouse Models of Genetic Diversity

Understanding the genetic basis of cortical bone traits can allow for the discovery of novel genes or biological pathways regulating bone health. Mice are the most widely used mammalian model for skeletal biology and allow for the quantification of traits that can’t easily be evaluated in humans, su...

Descripción completa

Detalles Bibliográficos
Autores principales: Migotsky, Nicole, Kumar, Surabhi, Shuster, John T., Coulombe, Jennifer C., Senwar, Bhavya, Gestos, Adrian A., Farber, Charles R., Ferguson, Virginia L., Silva, Matthew J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274655/
https://www.ncbi.nlm.nih.gov/pubmed/37333124
http://dx.doi.org/10.1101/2023.06.02.543484
_version_ 1785059774997463040
author Migotsky, Nicole
Kumar, Surabhi
Shuster, John T.
Coulombe, Jennifer C.
Senwar, Bhavya
Gestos, Adrian A.
Farber, Charles R.
Ferguson, Virginia L.
Silva, Matthew J.
author_facet Migotsky, Nicole
Kumar, Surabhi
Shuster, John T.
Coulombe, Jennifer C.
Senwar, Bhavya
Gestos, Adrian A.
Farber, Charles R.
Ferguson, Virginia L.
Silva, Matthew J.
author_sort Migotsky, Nicole
collection PubMed
description Understanding the genetic basis of cortical bone traits can allow for the discovery of novel genes or biological pathways regulating bone health. Mice are the most widely used mammalian model for skeletal biology and allow for the quantification of traits that can’t easily be evaluated in humans, such as osteocyte lacunar morphology. The goal of our study was to investigate the effect of genetic diversity on multi-scale cortical bone traits of three long bones in skeletally-mature mice. We measured bone morphology, mechanical properties, material properties, lacunar morphology, and mineral composition of mouse bones from two populations of genetic diversity. Additionally, we compared how intra-bone relationships varied in the two populations. Our first population of genetic diversity included 72 females and 72 males from the eight Inbred Founder strains used to create the Diversity Outbred (DO) population. These eight strains together span almost 90% of the genetic diversity found in mice (Mus musculus). Our second population of genetic diversity included 25 genetically unique, outbred females and 25 males from the DO population. We show that multi-scale cortical bone traits vary significantly with genetic background; heritability values range from 21% to 99% indicating genetic control of bone traits across length scales. We show for the first time that lacunar shape and number are highly heritable. Comparing the two populations of genetic diversity, we show each DO mouse does not resemble a single Inbred Founder but instead the outbred mice display hybrid phenotypes with the elimination of extreme values. Additionally, intra-bone relationships (e.g., ultimate force vs. cortical area) were mainly conserved in our two populations. Overall, this work supports future use of these genetically diverse populations to discover novel genes contributing to cortical bone traits, especially at the lacunar length scale.
format Online
Article
Text
id pubmed-10274655
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Cold Spring Harbor Laboratory
record_format MEDLINE/PubMed
spelling pubmed-102746552023-06-17 Multi-Scale Cortical Bone Traits Vary in Two Mouse Models of Genetic Diversity Migotsky, Nicole Kumar, Surabhi Shuster, John T. Coulombe, Jennifer C. Senwar, Bhavya Gestos, Adrian A. Farber, Charles R. Ferguson, Virginia L. Silva, Matthew J. bioRxiv Article Understanding the genetic basis of cortical bone traits can allow for the discovery of novel genes or biological pathways regulating bone health. Mice are the most widely used mammalian model for skeletal biology and allow for the quantification of traits that can’t easily be evaluated in humans, such as osteocyte lacunar morphology. The goal of our study was to investigate the effect of genetic diversity on multi-scale cortical bone traits of three long bones in skeletally-mature mice. We measured bone morphology, mechanical properties, material properties, lacunar morphology, and mineral composition of mouse bones from two populations of genetic diversity. Additionally, we compared how intra-bone relationships varied in the two populations. Our first population of genetic diversity included 72 females and 72 males from the eight Inbred Founder strains used to create the Diversity Outbred (DO) population. These eight strains together span almost 90% of the genetic diversity found in mice (Mus musculus). Our second population of genetic diversity included 25 genetically unique, outbred females and 25 males from the DO population. We show that multi-scale cortical bone traits vary significantly with genetic background; heritability values range from 21% to 99% indicating genetic control of bone traits across length scales. We show for the first time that lacunar shape and number are highly heritable. Comparing the two populations of genetic diversity, we show each DO mouse does not resemble a single Inbred Founder but instead the outbred mice display hybrid phenotypes with the elimination of extreme values. Additionally, intra-bone relationships (e.g., ultimate force vs. cortical area) were mainly conserved in our two populations. Overall, this work supports future use of these genetically diverse populations to discover novel genes contributing to cortical bone traits, especially at the lacunar length scale. Cold Spring Harbor Laboratory 2023-06-06 /pmc/articles/PMC10274655/ /pubmed/37333124 http://dx.doi.org/10.1101/2023.06.02.543484 Text en https://creativecommons.org/licenses/by-nc/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (https://creativecommons.org/licenses/by-nc/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Migotsky, Nicole
Kumar, Surabhi
Shuster, John T.
Coulombe, Jennifer C.
Senwar, Bhavya
Gestos, Adrian A.
Farber, Charles R.
Ferguson, Virginia L.
Silva, Matthew J.
Multi-Scale Cortical Bone Traits Vary in Two Mouse Models of Genetic Diversity
title Multi-Scale Cortical Bone Traits Vary in Two Mouse Models of Genetic Diversity
title_full Multi-Scale Cortical Bone Traits Vary in Two Mouse Models of Genetic Diversity
title_fullStr Multi-Scale Cortical Bone Traits Vary in Two Mouse Models of Genetic Diversity
title_full_unstemmed Multi-Scale Cortical Bone Traits Vary in Two Mouse Models of Genetic Diversity
title_short Multi-Scale Cortical Bone Traits Vary in Two Mouse Models of Genetic Diversity
title_sort multi-scale cortical bone traits vary in two mouse models of genetic diversity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274655/
https://www.ncbi.nlm.nih.gov/pubmed/37333124
http://dx.doi.org/10.1101/2023.06.02.543484
work_keys_str_mv AT migotskynicole multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity
AT kumarsurabhi multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity
AT shusterjohnt multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity
AT coulombejenniferc multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity
AT senwarbhavya multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity
AT gestosadriana multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity
AT farbercharlesr multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity
AT fergusonvirginial multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity
AT silvamatthewj multiscalecorticalbonetraitsvaryintwomousemodelsofgeneticdiversity