Translational Musculoskeletal Research Center, CMC VA Medical Center, Philadelphia, PA, United States; McKay Orthopaedic Research Laboratory, Department of Orthopaedic Surgery, University of Pennsylvania, Philadelphia, PA, United States; Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, United States.
Translational Musculoskeletal Research Center, CMC VA Medical Center, Philadelphia, PA, United States; McKay Orthopaedic Research Laboratory, Department of Orthopaedic Surgery, University of Pennsylvania, Philadelphia, PA, United States.
Osteoarthritis Cartilage. 2024 Oct;32(10):1295-1307. doi: 10.1016/j.joca.2024.06.010. Epub 2024 Jul 14.
In the knee, synovial fibrosis after ligamentous injury is linked to progressive joint pain and stiffness. The objective of this study was to evaluate changes in synovial architecture, mechanical properties, and transcriptional profiles following naturally occurring cruciate ligament injury in canines and to test potential therapeutics that target drivers of synovial inflammation and fibrosis.
Synovia from canines with spontaneous cruciate ligament tears and from healthy knees were assessed via histology (n = 10/group) and micromechanical testing (n = 5/group) to identify changes in tissue architecture and stiffness. Additional samples (n = 5/group) were subjected to RNA-sequencing to define the transcriptional response to injury. Finally, synovial tissue samples from injured animals (n = 6 (IL1) or n = 8 (IL6)/group) were assessed in vitro for response to therapeutic molecules directed against interleukin (IL) signaling (IL1 or IL6).
Cruciate injury resulted in increased synovial fibrosis, vascularity, inflammatory cell infiltration, and intimal hyperplasia. Additionally, the stiffness of both the intima and subintima regions were higher in diseased compared to healthy tissue. Differential gene expression analysis showed that diseased synovium had an upregulation of immune response and cell adhesion pathways and a downregulation of Rho protein transduction pathways. In vitro application of small molecule therapeutics targeting IL1 (anakinra) or IL6 (tocilizumab) dampened expression of inflammatory and matrix deposition mediators.
Spontaneous cruciate ligament injury in canines is associated with synovial inflammation and fibrosis in a relevant model for testing emerging intra-articular treatments. Small molecule therapeutics targeting IL pathways may be ideal interventions for delivery to the joint space after injury.
在膝关节中,韧带损伤后的滑膜纤维化与进行性关节疼痛和僵硬有关。本研究旨在评估犬自然发生前交叉韧带损伤后滑膜结构、力学特性和转录谱的变化,并测试针对滑膜炎症和纤维化驱动因素的潜在治疗方法。
通过组织学(n=10/组)和微力学测试(n=5/组)评估来自患有自发性前交叉韧带撕裂的犬和健康膝关节的滑膜,以确定组织结构和刚度的变化。对额外的样本(n=5/组)进行 RNA 测序以确定损伤后的转录反应。最后,体外评估受伤动物(IL1 组 n=6(IL1)或 n=8(IL6)/组)的滑膜组织样本对针对白细胞介素(IL)信号的治疗分子的反应。
前交叉韧带损伤导致滑膜纤维化、血管生成、炎症细胞浸润和内膜增生增加。此外,与健康组织相比,病变组织的内膜和内膜下区域的刚度均更高。差异基因表达分析显示,病变滑膜的免疫反应和细胞黏附途径上调,Rho 蛋白转导途径下调。针对白细胞介素 1(阿那白滞素)或白细胞介素 6(托珠单抗)的小分子治疗药物的体外应用抑制了炎症和基质沉积介质的表达。
犬自发性前交叉韧带损伤与滑膜炎症和纤维化有关,这是一种测试新的关节内治疗方法的相关模型。针对 IL 途径的小分子治疗药物可能是受伤后关节腔内给药的理想干预措施。