调整voronoi基支架的小梁取向,优化骨愈合的微环境。

IF 3 3区 医学 Q2 BIOPHYSICS
Luca D'Andrea, Giorgio Goretti, Gianni Magrini, Pasquale Vena
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引用次数: 0

摘要

Voronoi镶嵌是骨组织工程应用中设计随机结构的有力技术。在这项研究中,提出了一种创新的支架设计算法,该算法在保持整体随机结构的同时控制小梁方向。采用形态学分析和数值模型对支架进行了综合表征。结果表明,支架的有效刚度和渗透性直接受到小梁取向的影响。相比之下,其他参数,如孔隙度、小梁厚度、小梁间距和曲率,可以相对于小梁方向保持恒定。这些发现,结合机械生物学的考虑,为优化骨生长的微环境提供了一个强大的设计工作流程。该框架为根据特定的外载荷选择最合适的支架结构提供了有价值的工具,从而提高骨支架在临床应用中的有效性和可靠性。通过这种方法,目的是提高骨组织工程的精度和结果,为骨修复和再生的先进治疗解决方案的发展做出贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tuning the trabecular orientation of Voronoi-based scaffold to optimize the micro-environment for bone healing.

Voronoi tessellation is a powerful technique for designing random structures for bone tissue engineering applications. In this study, an innovative algorithm for scaffold design that controls trabecular orientation while maintaining an overall random architecture is presented. Morphological analyses and numerical models were employed to comprehensively characterize the scaffolds. The results indicate that the effective stiffness and permeability of the scaffolds are directly influenced by the trabecular orientation. In contrast, other parameters, such as porosity, trabecular thickness, trabecular spacing, and curvatures, can be kept constant with respect to the trabecular orientation. These findings, in conjunction with mechano-biological considerations, provide a robust design workflow to optimize the micro-environment for bone growth. This framework offers a valuable tool for selecting the most suitable scaffold architecture according to the specific external loads, thereby enhancing the efficacy and reliability of bone scaffolds in clinical applications. Through this approach, the aim is to improve the precision and outcomes of bone tissue engineering, contributing to the development of advanced therapeutic solutions for bone repair and regeneration.

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来源期刊
Biomechanics and Modeling in Mechanobiology
Biomechanics and Modeling in Mechanobiology 工程技术-工程:生物医学
CiteScore
7.10
自引率
8.60%
发文量
119
审稿时长
6 months
期刊介绍: Mechanics regulates biological processes at the molecular, cellular, tissue, organ, and organism levels. A goal of this journal is to promote basic and applied research that integrates the expanding knowledge-bases in the allied fields of biomechanics and mechanobiology. Approaches may be experimental, theoretical, or computational; they may address phenomena at the nano, micro, or macrolevels. Of particular interest are investigations that (1) quantify the mechanical environment in which cells and matrix function in health, disease, or injury, (2) identify and quantify mechanosensitive responses and their mechanisms, (3) detail inter-relations between mechanics and biological processes such as growth, remodeling, adaptation, and repair, and (4) report discoveries that advance therapeutic and diagnostic procedures. Especially encouraged are analytical and computational models based on solid mechanics, fluid mechanics, or thermomechanics, and their interactions; also encouraged are reports of new experimental methods that expand measurement capabilities and new mathematical methods that facilitate analysis.
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