School of Materials Science and Engineering, South China University of Technology, Guangzhou 510006, PR China.
National Engineering Research Center for Tissue Restoration and Reconstruction, Guangzhou 510006, PR China.
Biomacromolecules. 2023 Sep 11;24(9):4240-4252. doi: 10.1021/acs.biomac.3c00547. Epub 2023 Aug 16.
Bionic mimics using natural cartilage matrix molecules can modulate the corresponding metabolic activity by improving the microenvironment of chondrocytes. A bionic brush polymer, HA/PX, has been found to reverse the loss of cartilage extracellular matrix (ECM) and has promising applications in the clinical treatment of osteoarthritis (OA). However, the unknown bioremediation mechanism of HA/PX severely hinders its clinical translation. In OA, the massive loss of the ECM may be attributed to a decrease in transient receptor potential vanilloid 4 (TRPV4) activity, which affects reactive oxygen species (ROS) clearance and [Ca] signaling, initiating downstream catabolic pathways. In this study, we investigated the bioremediation mechanism of HA/PX in a model of interleukin 1β (IL-1β)-induced inflammation. Through TRPV4, HA/PX reduced ROS accumulation in chondrocytes and enhanced [Ca] signaling, reflecting a short-term protection capacity for chondrocytes. In addition, HA/PX balanced the metabolic homeostasis of chondrocytes via TRPV4, including promoting the secretion of type II collagen (Col-II) and aggrecan, the major components of the ECM, and reducing the expression of matrix metal-degrading enzyme (MMP-13), exerting long-term protective effects on chondrocytes. Molecular dynamics (MD) simulations showed that HA/PX could act as a TRPV4 activator. Our results suggest that HA/PX can regulate chondrocyte homeostasis via ROS/Ca/TRPV4, thereby improving cartilage regeneration. Because the ECM is a prevalent feature of various cell types, HA/PX holds promising potential for improving regeneration and disease modification for not only cartilage-related healthcare but many other tissues and diseases.
仿生模拟物利用天然软骨基质分子,可以通过改善软骨细胞的微环境来调节相应的代谢活性。已经发现仿生刷聚合物 HA/PX 可以逆转软骨细胞外基质 (ECM) 的丢失,并在骨关节炎 (OA) 的临床治疗中有很好的应用前景。然而,HA/PX 的未知生物修复机制严重阻碍了其临床转化。在 OA 中,ECM 的大量丢失可能归因于瞬时受体电位香草酸 4 (TRPV4) 活性的降低,这影响活性氧物质 (ROS) 的清除和 [Ca]信号,启动下游的分解代谢途径。在这项研究中,我们研究了 HA/PX 在白细胞介素 1β (IL-1β) 诱导的炎症模型中的生物修复机制。通过 TRPV4,HA/PX 减少了软骨细胞中 ROS 的积累并增强了 [Ca]信号,反映了对软骨细胞的短期保护能力。此外,HA/PX 通过 TRPV4 平衡了软骨细胞的代谢稳态,包括促进 ECM 的主要成分 II 型胶原 (Col-II) 和聚集蛋白聚糖的分泌,以及减少基质金属降解酶 (MMP-13) 的表达,对软骨细胞发挥长期保护作用。分子动力学 (MD) 模拟表明,HA/PX 可以作为 TRPV4 激活剂。我们的结果表明,HA/PX 可以通过 ROS/Ca/TRPV4 调节软骨细胞的稳态,从而改善软骨再生。因为 ECM 是各种细胞类型的普遍特征,所以 HA/PX 不仅对与软骨相关的医疗保健,而且对许多其他组织和疾病的再生和疾病修饰都有很大的潜力。