Pichler K M, Weinmann D, Schmidt S, Kubista B, Lass R, Martelanz L, Alphonsus J, Windhager R, Gabius H J, Toegel S
Department of Orthopedics and Trauma Surgery, Karl Chiari Lab for Orthopaedic Biology, Medical University of Vienna, Waehringer Guertel 18-20, 1090, Vienna, Austria.
Institute of Physiological Chemistry, Faculty of Veterinary Medicine, Ludwig-Maximilians University Munich, Munich, Germany.
Calcif Tissue Int. 2021 Mar;108(3):377-390. doi: 10.1007/s00223-020-00774-4. Epub 2020 Nov 13.
This work aimed to study the dysregulated network of galectins in OA chondrocyte pellets, and to assess whether their recently discovered activity as molecular switches of functional biomarkers results in degradation of extracellular matrix in vitro. Scaffold-free 3D pellet cultures were established of human OA chondrocytes. Expression and secretion of galectin(Gal)-1, -3, and -8 were monitored relative to 2D cultures or clinical tissue sections by RT-qPCR, immunohistochemistry and ELISAs. Exposure of 2D and 3D cultures to an in vivo-like galectin mixture (Gal-1 and Gal-8: 5 µg/ml, Gal-3: 1 µg/ml) was followed by the assessment of pellet size, immunohistochemical matrix staining, and/or quantification of MMP-1, -3, and -13. Application of inhibitors of NF-κB activation probed into the potential of intervening with galectin-induced matrix degradation. Galectin profiling revealed maintained dysregulation of Gal-1, -3, and -8 in pellet cultures, resembling the OA situation in situ. The presence of the galectin mixture promoted marked reduction of pellet size and loss of collagen type II-rich extracellular matrix, accompanied by the upregulation of MMP-1, -3, and -13. Inhibition of p65-phosphorylation by caffeic acid phenethyl ester effectively alleviated the detrimental effects of galectins, resulting in downregulated MMP secretion, reduced matrix breakdown and augmented pellet size. This study suggests that the dysregulated galectin network in OA cartilage leads to extracellular matrix breakdown, and provides encouraging evidence of the feasible inhibition of galectin-triggered activities. OA chondrocyte pellets have the potential to serve as in vitro disease model for further studies on galectins in OA onset and progression.
这项研究旨在探究骨关节炎(OA)软骨细胞微球中半乳糖凝集素失调的网络,并评估其作为功能生物标志物分子开关的最新发现活性是否会导致体外细胞外基质的降解。建立了人OA软骨细胞的无支架三维微球培养体系。通过逆转录定量聚合酶链反应(RT-qPCR)、免疫组织化学和酶联免疫吸附测定(ELISA),相对于二维培养物或临床组织切片,监测半乳糖凝集素(Gal)-1、-3和-8的表达与分泌。二维和三维培养物暴露于类似体内的半乳糖凝集素混合物(Gal-1和Gal-8:5μg/ml,Gal-3:1μg/ml)后,评估微球大小、免疫组织化学基质染色和/或基质金属蛋白酶(MMP)-1、-3和-13的定量。应用核因子κB(NF-κB)激活抑制剂探究干预半乳糖凝集素诱导的基质降解的可能性。半乳糖凝集素分析显示微球培养物中Gal-1、-3和-8持续失调,类似于原位OA的情况。半乳糖凝集素混合物的存在促使微球大小显著减小以及富含II型胶原蛋白的细胞外基质丢失,同时伴有MMP-1、-3和-13的上调。咖啡酸苯乙酯抑制p65磷酸化可有效减轻半乳糖凝集素的有害作用,导致MMP分泌下调、基质分解减少以及微球大小增大。本研究表明,OA软骨中失调的半乳糖凝集素网络导致细胞外基质分解,并为可行地抑制半乳糖凝集素触发的活性提供了令人鼓舞的证据。OA软骨细胞微球有潜力作为体外疾病模型,用于进一步研究半乳糖凝集素在OA发病和进展中的作用。