Institute for Pharmacology and Toxicology, University of Bonn, Bonn, Germany.
R&D, Drug Metabolism & Pharmacokinetics, Sanofi-Aventis Deutschand GmbH, Frankfurt, Germany.
J Cell Mol Med. 2021 Dec;25(24):11221-11231. doi: 10.1111/jcmm.17044. Epub 2021 Nov 11.
Excessive pressure or overload induces and aggravates osteoarthritic changes in articular cartilage, but the underlying biomechanical forces are largely ignored in existing pharmacological in vitro models that are used to investigate drugs against osteoarthritis (OA). Here, we introduce a novel in vitro model to perform pathophysiological and pharmacological investigations, in which cartilage explants are subjected to intermittent cyclic pressure, and characterize its ability to mimic OA-like tissue reactivity. Mechanical loading time-dependently increased the biosynthesis, content and retention of fibronectin (Fn), whereas collagen metabolism remained unchanged. This protocol upregulated the production and release of proteoglycans (PGs). The release of PGs from explants was significantly inhibited by a matrix metalloproteinase (MMP) inhibitor, suggesting the involvement of such proteinases in the destruction of the model tissue, similar to what is observed in human OA cartilage. In conclusion, the metabolic alterations in our new biomechanical in vitro model are similar to those of early human OA cartilage, and our pharmacological prevalidation with an MMP-inhibitor supports its value for further in vitro drug studies.
过度的压力或过载会导致关节软骨的骨关节炎变化,并加重这种变化,但在现有的用于研究治疗骨关节炎(OA)药物的药理学体外模型中,这些潜在的生物力学力在很大程度上被忽视了。在这里,我们引入了一种新的体外模型,用于进行病理生理学和药理学研究,其中软骨标本受到间歇性循环压力的作用,并对其模拟 OA 样组织反应的能力进行了特征描述。机械加载会随时间增加纤维连接蛋白(Fn)的生物合成、含量和保留,而胶原代谢保持不变。该方案上调了蛋白聚糖(PGs)的产生和释放。基质金属蛋白酶(MMP)抑制剂显著抑制 PG 从标本中的释放,表明这些蛋白酶参与了模型组织的破坏,这与在人类 OA 软骨中观察到的情况相似。总之,我们新的生物力学体外模型中的代谢变化与早期人类 OA 软骨相似,我们用 MMP 抑制剂进行的药理学预验证支持了该模型在进一步的体外药物研究中的价值。