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多尺度皮质骨特征在两种遗传多样性小鼠模型中存在差异。

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

作者信息

Migotsky Nicole, Kumar Surabhi, Shuster John T, Coulombe Jennifer C, Senwar Bhavya, Gestos Adrian A, Farber Charles R, Ferguson Virginia L, Silva Matthew J

机构信息

Orthopaedic Surgery, Washington University in St. Louis, St. Louis, MO.

Department of Biomedical Engineering, Washington University in St. Louis, St. Louis, MO.

出版信息

bioRxiv. 2023 Jun 6:2023.06.02.543484. doi: 10.1101/2023.06.02.543484.

Abstract

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 (). 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.

摘要

了解皮质骨性状的遗传基础有助于发现调控骨骼健康的新基因或生物途径。小鼠是骨骼生物学中使用最广泛的哺乳动物模型,可对一些在人类中难以评估的性状进行量化,如骨细胞陷窝形态。我们研究的目的是调查遗传多样性对骨骼成熟小鼠三根长骨多尺度皮质骨性状的影响。我们测量了来自两个遗传多样性群体的小鼠骨骼的骨形态、力学性能、材料性能、陷窝形态和矿物质组成。此外,我们比较了这两个群体中骨内关系的差异。我们的第一个遗传多样性群体包括来自用于创建多样性远交(DO)群体的八个近交创始品系的72只雌性和72只雄性小鼠。这八个品系共同涵盖了小鼠中发现的近90%的遗传多样性()。我们的第二个遗传多样性群体包括来自DO群体的25只基因独特的远交雌性和25只雄性小鼠。我们发现多尺度皮质骨性状随遗传背景有显著差异;遗传力值范围从21%到99%,表明在不同长度尺度上骨性状受遗传控制。我们首次表明陷窝形状和数量具有高度遗传性。比较这两个遗传多样性群体,我们发现每只DO小鼠并不类似于单个近交创始品系,相反,远交小鼠表现出混合表型,极端值被消除。此外,骨内关系(如极限力与皮质面积)在我们的两个群体中基本保持一致。总体而言,这项工作支持未来利用这些遗传多样的群体来发现有助于皮质骨性状的新基因,特别是在陷窝长度尺度上。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d7b2/10274655/41a46573d8e0/nihpp-2023.06.02.543484v1-f0002.jpg

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