在一项多种族队列研究中,基因组结构变异将多个基因与骨矿物质密度联系起来:路易斯安那州骨质疏松症研究。

IF 5.1 1区 医学 Q1 ENDOCRINOLOGY & METABOLISM Journal of Bone and Mineral Research Pub Date : 2024-09-26 DOI:10.1093/jbmr/zjae133
Kuan-Jui Su, Chuan Qiu, Jonathan Greenbaum, Xiao Zhang, Anqi Liu, Yong Liu, Zhe Luo, Shashank Sajjan Mungasavalli Gnanesh, Qing Tian, Lan-Juan Zhao, Hui Shen, Hong-Wen Deng
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引用次数: 0

摘要

骨质疏松症以骨矿物质密度(BMD)低为特征,是一种高度遗传的代谢性骨病。虽然单核苷酸变异(SNV)已被广泛研究,但它们只能解释骨密度遗传性的一小部分。虽然基因组结构变异(SV)是大规模的基因组改变,有助于形成表型变异的遗传多样性,但人们对 SV 在骨质疏松症易感性中的作用仍然知之甚少。本研究旨在确定与 BMD 相关的 SVs 基因并对其进行优先排序。我们对路易斯安那骨质疏松症研究的 4982 名受试者进行了全基因组测序。为了获得高置信度的 SVs,我们采用了一种集合方法来检测 SVs。我们分别检测了 SV 与髋关节(HIP)、股骨颈(FNK)和腰椎(SPN)BMD 变异的相关性。此外,我们还利用多组学方法进行了共现分析,根据功能重要性对已识别基因进行了优先排序。我们采用了分层方法来探讨性别和种族特异性效应。我们确定了 SV-BMD 的重要关联:其中 125 个与 FNK-BMD 相关,99 个与 SPN-BMD 相关,83 个与 HIP-BMD 相关。在综合分析和分层分析中,我们观察到 SV 通常与 FNK 和 HIP BMD 相关。这些 SV 可解释 13.3% 到 19.1% 的 BMD 变异。新出现的骨相关基因包括 LINC02370、ZNF 家族基因和 ZDHHC 家族基因。此外,携带 BMD 相关缺失的 FMN2 与 FNK 或 HIP BMD 存在关联,并具有性别特异性效应。共现分析优先考虑与不同骨骼部位的 BMD 呈正相关的 RNA 基因 LINC00494 和 ZNF 家族基因。此外,还发现了两个潜在的骨质疏松症致病基因,即 IBSP 和 SPP1。我们的研究通过 SV 分析发现了影响 BMD 的遗传因素的新见解。我们强调了与 BMD 相关的 SV,揭示了不同骨骼部位、性别或种族的共同和特定遗传影响。这些发现提示了在骨质疏松症病理生理学中的潜在作用,为进一步的研究和治疗目标开辟了途径。
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Genomic structural variations link multiple genes to bone mineral density in a multi-ethnic cohort study: Louisiana osteoporosis study.

Osteoporosis, characterized by low BMD, is a highly heritable metabolic bone disorder. Although single nucleotide variations (SNVs) have been extensively studied, they explain only a fraction of BMD heritability. Although genomic structural variations (SVs) are large-scale genomic alterations that contribute to genetic diversity in shaping phenotypic variations, the role of SVs in osteoporosis susceptibility remains poorly understood. This study aims to identify and prioritize genes that harbor BMD-related SVs. We performed whole genome sequencing on 4982 subjects from the Louisiana Osteoporosis Study. To obtain high-confidence SVs, the detection of SVs was performed using an ensemble approach. The SVs were tested for association with BMD variation at the hip (HIP), femoral neck (FNK), and lumbar spine (SPN), respectively. Additionally, we conducted co-occurrence analysis using multi-omics approaches to prioritize the identified genes based on their functional importance. Stratification was employed to explore the sex- and ethnicity-specific effects. We identified significant SV-BMD associations: 125 for FNK-BMD, 99 for SPN-BMD, and 83 for HIP-BMD. We observed SVs that were commonly associated with both FNK and HIP BMDs in our combined and stratified analyses. These SVs explain 13.3% to 19.1% of BMD variation. Novel bone-related genes emerged, including LINC02370, ZNF family genes, and ZDHHC family genes. Additionally, FMN2, carrying BMD-related deletions, showed associations with FNK or HIP BMDs, with sex-specific effects. The co-occurrence analysis prioritized an RNA gene LINC00494 and ZNF family genes positively associated with BMDs at different skeletal sites. Two potential causal genes, IBSP and SPP1, for osteoporosis were also identified. Our study uncovers new insights into genetic factors influencing BMD through SV analysis. We highlight BMD-related SVs, revealing a mix of shared and specific genetic influences across skeletal sites and gender or ethnicity. These findings suggest potential roles in osteoporosis pathophysiology, opening avenues for further research and therapeutic targets.

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来源期刊
Journal of Bone and Mineral Research
Journal of Bone and Mineral Research 医学-内分泌学与代谢
CiteScore
11.30
自引率
6.50%
发文量
257
审稿时长
2 months
期刊介绍: The Journal of Bone and Mineral Research (JBMR) publishes highly impactful original manuscripts, reviews, and special articles on basic, translational and clinical investigations relevant to the musculoskeletal system and mineral metabolism. Specifically, the journal is interested in original research on the biology and physiology of skeletal tissues, interdisciplinary research spanning the musculoskeletal and other systems, including but not limited to immunology, hematology, energy metabolism, cancer biology, and neurology, and systems biology topics using large scale “-omics” approaches. The journal welcomes clinical research on the pathophysiology, treatment and prevention of osteoporosis and fractures, as well as sarcopenia, disorders of bone and mineral metabolism, and rare or genetically determined bone diseases.
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