Chiara Bregoli, Carlo Alberto Biffi, Ausonio Tuissi, Federica Buccino
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Bone mechanical response, dependent on trabecular arrangement, is defined by apparent stiffness, computationally calculated using the Gibson-Ashby model. Key findings indicate that: (i) in addition to bone density, measured using X-ray absorptiometry, trabecular connectivity density, trabecular spacing and degree of anisotropy are crucial parameters for characterize osteoporosis state; (ii) apparent stiffness values exhibit strong correlations with bone density and connectivity density; (iii) connectivity density and degree of anisotropy result the best predictors of mechanical response. Despite the inherent heterogeneity in bone structure, suggesting the potential benefit of a larger sample size in the future, this approach presents a valuable method to enhance discrimination between osteoporotic and non-osteoporotic samples.</p>","PeriodicalId":49840,"journal":{"name":"Medical & Biological Engineering & Computing","volume":null,"pages":null},"PeriodicalIF":2.6000,"publicationDate":"2024-11-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11485120/pdf/","citationCount":"0","resultStr":"{\"title\":\"Effect of trabecular architectures on the mechanical response in osteoporotic and healthy human bone.\",\"authors\":\"Chiara Bregoli, Carlo Alberto Biffi, Ausonio Tuissi, Federica Buccino\",\"doi\":\"10.1007/s11517-024-03134-8\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Research at the mesoscale bone trabeculae arrangement yields intriguing results that, due to their clinical resolution, can be applied in clinical field, contributing significantly to the diagnosis of bone-related diseases. 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引用次数: 0
摘要
对中尺度骨小梁排列的研究产生了令人感兴趣的结果,由于其临床分辨率高,这些结果可以应用于临床领域,对诊断骨相关疾病做出重大贡献。虽然文献提供了定量形态计量参数,以全面描述中尺度骨网络的特征,但在理解它们之间的关系,尤其是在各种骨病理学背景下的关系方面还存在差距。本研究旨在通过定量评估骨质疏松和非骨质疏松骨骼中尺度的形态计量参数和机械响应之间的相互作用来弥补这些差距。骨的机械响应取决于骨小梁的排列,由表观刚度定义,通过吉布森-阿什比模型计算得出。主要研究结果表明(i) 除了用 X 射线吸收测量法测量的骨密度外,骨小梁连接密度、骨小梁间距和各向异性程度也是描述骨质疏松症状态的关键参数;(ii) 表观硬度值与骨密度和连接密度有很强的相关性;(iii) 连接密度和各向异性程度是预测机械响应的最佳结果。尽管骨结构存在固有的异质性,这表明未来更大的样本量可能会带来益处,但这种方法为提高骨质疏松症和非骨质疏松症样本之间的区分度提供了一种有价值的方法。
Effect of trabecular architectures on the mechanical response in osteoporotic and healthy human bone.
Research at the mesoscale bone trabeculae arrangement yields intriguing results that, due to their clinical resolution, can be applied in clinical field, contributing significantly to the diagnosis of bone-related diseases. While the literature offers quantitative morphometric parameters for a thorough characterization of the mesoscale bone network, there is a gap in understanding relationships among them, particularly in the context of various bone pathologies. This research aims to bridge these gaps by offering a quantitative evaluation of the interplay among morphometric parameters and mechanical response at mesoscale in osteoporotic and non-osteoporotic bones. Bone mechanical response, dependent on trabecular arrangement, is defined by apparent stiffness, computationally calculated using the Gibson-Ashby model. Key findings indicate that: (i) in addition to bone density, measured using X-ray absorptiometry, trabecular connectivity density, trabecular spacing and degree of anisotropy are crucial parameters for characterize osteoporosis state; (ii) apparent stiffness values exhibit strong correlations with bone density and connectivity density; (iii) connectivity density and degree of anisotropy result the best predictors of mechanical response. Despite the inherent heterogeneity in bone structure, suggesting the potential benefit of a larger sample size in the future, this approach presents a valuable method to enhance discrimination between osteoporotic and non-osteoporotic samples.
期刊介绍:
Founded in 1963, Medical & Biological Engineering & Computing (MBEC) continues to serve the biomedical engineering community, covering the entire spectrum of biomedical and clinical engineering. The journal presents exciting and vital experimental and theoretical developments in biomedical science and technology, and reports on advances in computer-based methodologies in these multidisciplinary subjects. The journal also incorporates new and evolving technologies including cellular engineering and molecular imaging.
MBEC publishes original research articles as well as reviews and technical notes. Its Rapid Communications category focuses on material of immediate value to the readership, while the Controversies section provides a forum to exchange views on selected issues, stimulating a vigorous and informed debate in this exciting and high profile field.
MBEC is an official journal of the International Federation of Medical and Biological Engineering (IFMBE).