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bioRxiv · 10.1101/2022.04.06.487311

Salicin modifies osteoarthritis progression by binding on IRE1α and inhibiting IRE1α mediated endoplasmic reticulum stress

Abstract

ObjectivesTo investigate the effect and mechanisms of salicin (SA) on osteoarthritis (OA) progression. MethodsPrimary rat chondrocytes were stimulated with TNF- and treated with or without SA. CCK-8 was utilized to determine the cytotoxicity of SA. RT-qPCR, Western Blotting and immunofluorescence staining were used to detect inflammatory factors, cartilage matrix degeneration markers, cell proliferation and apoptosis markers expression at mRNA and protein levels respectively. EdU assay and flow cytometer analysis were utilized for evaluating cell proliferation and apoptosis. RNA-sequencing, molecular docking, drug affinity responsive target stability and WB were applied to clarify mechanisms. Rat OA model was used to evaluate the effect of intra-articular injection of SA on OA progression. ResultsNo obvious cytotoxicity was found with the treatment of 10 M SA. SA rescued TNF- induced degeneration of cartilage matrix, inhibition of chondrocytes proliferation, and promotion of chondrocytes apoptosis. In mechanism, we clarified SA could directly bind on IRE1 and occupy IRE1 phosphorylation site, followed with inhibiting IRE1 phosphorylation and regulating IRE1 mediated endoplasmic reticulum (ER) stress by IRE1-I{kappa}B-p65 signaling. Finally, intra-articular injection of SA loaded PLGA could ameliorate OA progression by inhibiting IRE1 mediated ER stress in OA model. ConclusionsSA alleviates OA by directly binding on ER stress regulator IRE1 and inhibits IRE1 mediated ER stress by IRE1-I{kappa}B-p65 signaling. Topical use of small molecular drug SA holds the potential of modifying OA progression.

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BibTeXRIS

Zhu, Z., Gao, S., Chen, C., Xu, W., Xiao, P., Chen, Z., Du, C., Chen, B., Gao, Y., Wang, C., Liao, J., Huang, W.. 2022-04-06. Salicin modifies osteoarthritis progression by binding on IRE1α and inhibiting IRE1α mediated endoplasmic reticulum stress. https://doi.org/10.1101/2022.04.06.487311

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