High-fat diet-induced osteoporosis in mice under hypoxic conditions.

IF 2.2 3区 医学 Q2 ORTHOPEDICS
Yajun Qiao, Huimin Zheng, Ruiying Cheng, Juan Guo, Li Ji, Zhibin Liu, Lixin Wei, Hongtao Bi, Zhongshu Shan
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Abstract

In the context of global aging, osteoporosis has emerged as a significant public health concern, with a relatively high prevalence observed in plateau regions. This study aimed to investigate the effects and underlying mechanisms of high-fat diet (HFD) and hypoxic conditions on bone metabolism in mice. The mice were subjected to different dietary regimens (a HFD versus a normal diet) and placed in a hypoxic environment. This study explored relevant mechanisms through comprehensive assessments, including body and bone morphological indices, pathological examinations, biochemical analyses, evaluation of gut microbiota diversity, and metabolomics approaches. The results indicated that, compared with those in the control group, the body weight, Lee's index, body mass index (BMI), and body fat percentage of the HFD-fed group were significantly greater. Additionally, the femoral microstructure was compromised, bone metabolic markers were disrupted, inflammatory responses were heightened, gut microbiota diversity was altered, and specific intestinal metabolites such as Anserine were downregulated, whereas L-carnosine was upregulated. Spearman correlation analysis and network visualization elucidated the multifactorial influence mechanism of a HFD on bone metabolism under hypoxic conditions. These factors interconnect to form a complex network that drives osteoporosis development. Notably, L-carnosine occupies a central position within this network, serving as a key hub for interactions among various factors. Under the dual stressors of hypoxia and a HFD, this network becomes imbalanced, leading to bone metabolic disorders and osteoporosis. This study provides insights into the multifactorial mechanisms of osteoporosis induced by a HFD and hypoxia in mice, offering a foundation for subsequent research and preventive strategies for osteoporosis in plateau areas.

低氧条件下小鼠高脂饮食引起的骨质疏松症。
在全球老龄化的背景下,骨质疏松症已成为一个重大的公共卫生问题,在高原地区的患病率相对较高。本研究旨在探讨高脂饮食(HFD)和低氧条件对小鼠骨代谢的影响及其机制。小鼠接受不同的饮食方案(HFD与正常饮食),并置于缺氧环境中。本研究通过身体和骨骼形态学指标、病理检查、生化分析、肠道菌群多样性评估和代谢组学方法等综合评估,探讨了相关机制。结果表明,与对照组相比,饲喂hfd组的体重、Lee's指数、身体质量指数(BMI)和体脂率均显著升高。此外,股骨微结构受损,骨代谢标志物被破坏,炎症反应增强,肠道微生物群多样性改变,特定肠道代谢物(如鹅胺)下调,而l -肌肽上调。Spearman相关分析和网络可视化阐明了低氧条件下HFD对骨代谢的多因素影响机制。这些因素相互联系,形成一个复杂的网络,驱动骨质疏松症的发展。值得注意的是,左旋肌肽在这个网络中占据中心位置,是各种因素之间相互作用的关键枢纽。在缺氧和HFD的双重应激源下,该网络变得不平衡,导致骨代谢紊乱和骨质疏松症。本研究揭示了HFD和缺氧诱导小鼠骨质疏松的多因素机制,为高原地区骨质疏松的后续研究和预防策略提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
BMC Musculoskeletal Disorders
BMC Musculoskeletal Disorders 医学-风湿病学
CiteScore
3.80
自引率
8.70%
发文量
1017
审稿时长
3-6 weeks
期刊介绍: BMC Musculoskeletal Disorders is an open access, peer-reviewed journal that considers articles on all aspects of the prevention, diagnosis and management of musculoskeletal disorders, as well as related molecular genetics, pathophysiology, and epidemiology. The scope of the Journal covers research into rheumatic diseases where the primary focus relates specifically to a component(s) of the musculoskeletal system.
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