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COMPUTER SIMULATION-BASED MODELING OF THE PHARMACEUTICAL INTERVENTION OF POSTMENOPAUSAL OSTEOPOROSIS BY DENOSUMAB

机译:诺美单抗对绝经后骨质疏松症药物干预的基于计算机模拟的建模

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Postmenopausal osteoporosis (PMO), leading to a higher bone fracture risk, is characterized by a significantly increasing bone porosity. Recently, denosumab, which is able to efficiently interfere with bone resorption, has been approved for the treatment of PMO. In order to optimize the design of drug administration regimes, we propose a computational methodology, based on mechanistic mathematical modeling of bone remodeling, considering the governing biochemical and biomechanical regulation mechanisms, and the targeted action of denosumab. The time-dependent serum concentration of denosumab, obtained from a pharmacokinetics model, is fed into a bone cell population model, allowing for prediction of porosity evolution in PMO patients. In order to account for the mechanobiology of bone remodeling, we utilize the concept of continuum micromechanics, which accurately provides the actual (microscopic) strain state of the investigated bone. Finally, different drug administration regimes are simulated, and their effect on the bone microarchi-tecture is discussed.
机译:绝经后骨质疏松症(PMO)导致较高的骨折风险,其特征是骨孔隙率显着增加。最近,能够有效干扰骨吸收的狄诺塞麦已被批准用于治疗PMO。为了优化药物给药方案的设计,我们提出了一种计算方法,该方法基于骨骼重塑的机械数学模型,并考虑了主要的生化和生物力学调节机制以及denosumab的靶向作用。从药代动力学模型获得的随时间变化的地诺单抗血清浓度被输入到骨细胞群体模型中,从而可以预测PMO患者的孔隙度演变。为了解决骨骼重塑的力学生物学问题,我们利用连续微力学的概念,该概念可以准确地提供所研究骨骼的实际(微观)应变状态。最后,模拟了不同的给药方式,并讨论了它们对骨骼微结构的影响。

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