Effect of Interleukin-1beta on Osteogenic Protein 1-induced Signaling in Adult Human Articular Chondrocytes
Overview
Affiliations
Objective: Two major receptor-activated Smad (R-Smad) signaling pathways, bone morphogenetic protein (BMP) and MAPK, were examined in a model of interleukin-1beta (IL-1beta)-induced cartilage degeneration to investigate the effect of IL-1beta on osteogenic protein 1 (OP-1) signaling in adult human articular chondrocytes.
Methods: Chondrocytes from the ankles of 26 normal human donors were cultured in high-density monolayers in serum-free medium. The effect of IL-1beta on BMP receptors was studied by reverse transcription-polymerase chain reaction and flow cytometry. Phosphorylation of R-Smads was tested in cells treated with IL-1beta (10 ng/ml), OP-1 (100 ng/ml), or the combination of IL-1beta and OP-1. Cell lysates were analyzed by Western blotting with polyclonal antibodies against 2 R-Smad phosphorylation sites (BMP- and MAPK-mediated) or with total, nonphosphorylated R-Smad as a control. To identify which MAPKs play a role in IL-1beta activation of the linker region, chondrocytes were preincubated with specific MAPK inhibitors (PD98059 for MAP/ERK, SP600125 for JNK, and SB203580 for p38).
Results: IL-1beta reduced the number of activin receptor-like kinase 2 (ALK-2) and ALK-3 receptors, inhibited expression of Smad1 and Smad6, delayed and prematurely terminated the onset of OP-1-mediated R-Smad phosphorylation, and affected nuclear translocation of R-Smad/Smad4 complexes. The alternative phosphorylation of R-Smad in the linker region via the MAPK pathway (primarily p38 and JNK) was observed to be a possible mechanism through which IL-1beta offsets OP-1 signaling and the response to OP-1. Conversely, OP-1 was found to directly inhibit phosphorylation of p38.
Conclusion: These findings describe new mechanisms of the crosstalk between OP-1 and IL-1beta in chondrocytes. The study also identifies potential targets for therapeutic interventions in the treatment of cartilage-degenerative processes.
Lipid Metabolism in Cartilage Development, Degeneration, and Regeneration.
Su Z, Zong Z, Deng J, Huang J, Liu G, Wei B Nutrients. 2022; 14(19).
PMID: 36235637 PMC: 9570753. DOI: 10.3390/nu14193984.
Thielen N, Neefjes M, Wiegertjes R, van den Akker G, Vitters E, van Beuningen H Int J Mol Sci. 2021; 22(15).
PMID: 34360888 PMC: 8347103. DOI: 10.3390/ijms22158124.
Shao Y, Zhao C, Pan J, Zeng C, Zhang H, Liu L Aging (Albany NY). 2021; 13(7):9646-9664.
PMID: 33744859 PMC: 8064147. DOI: 10.18632/aging.202708.
Pyroptosis in Osteoblasts: A Novel Hypothesis Underlying the Pathogenesis of Osteoporosis.
Tao Z, Wang J, Wen K, Yao R, Da W, Zhou S Front Endocrinol (Lausanne). 2021; 11:548812.
PMID: 33488513 PMC: 7821870. DOI: 10.3389/fendo.2020.548812.
TGFβ/BMP Signaling Pathway in Cartilage Homeostasis.
Thielen N, van der Kraan P, van Caam A Cells. 2019; 8(9).
PMID: 31450621 PMC: 6769927. DOI: 10.3390/cells8090969.