Multi-disciplinary Mechanics and Modeling Laboratory, Department of Engineering, East Carolina University, Greenville, NC 27858, USA.
Tissue Mechanics Laboratory, Bioengineering Graduate Program, University of Notre Dame, Notre Dame, IN 46556, USA.
Prog Biophys Mol Biol. 2021 Sep;164:33-45. doi: 10.1016/j.pbiomolbio.2021.05.001. Epub 2021 May 28.
Bone remodeling is a complex physiological process that spans across multiple spatial and temporal scales and is regulated by both mechanical and hormonal cues. An imbalance between bone resorption and bone formation in the process of bone remodeling may lead to various bone pathologies. One powerful and non-invasive approach to gain new insights into mechano-adaptive bone remodeling is computer modeling and simulation. Recent findings in bone physiology and advances in computer modeling have provided a unique opportunity to study the integration of mechanics and biology in bone remodeling. Our objective in this review is to critically appraise recent advances and developments and discuss future research opportunities in computational bone remodeling approaches that enable integration of mechanics and cellular and molecular pathways. Based on the critical appraisal of the relevant recent published literature, we conclude that multiscale in silico integration of personalized bone mechanics and mechanobiology combined with data science and analytics techniques offer the potential to deepen our knowledge of bone remodeling and provide ample opportunities for future research.
骨重建是一个复杂的生理过程,跨越多个时空尺度,受到机械和激素信号的调节。骨重建过程中骨吸收和骨形成之间的失衡可能导致各种骨病变。一种深入了解机械适应性骨重建的强大且非侵入性方法是计算机建模和模拟。骨生理学的最新发现和计算机建模的进展为研究力学和生物学在骨重建中的整合提供了独特的机会。我们的目标是在本综述中批判性地评估最近的进展和发展,并讨论计算骨重建方法中的未来研究机会,这些方法可以实现力学与细胞和分子途径的整合。基于对相关近期文献的批判性评估,我们得出结论,个性化骨力学和机械生物学的多尺度计算整合结合数据科学和分析技术有可能加深我们对骨重建的认识,并为未来的研究提供充足的机会。