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bioRxiv · 10.1101/2022.02.28.482440

CircRNA_33702 promotes renal fibrosis by targeting the miR-29b-3p/WISP1 pathway

Abstract

Growing evidence suggest that circular RNAs (circRNAs) are critical mediators in renal diseases. However, there have been very few reports about the role of circRNAs in renal fibrosis. In this study, circRNA_33702 was found to be upregulated, both in UUO mice and in TGF-{beta} 1-treated BUMPT cells. Whilst knockdown of circRNA_33702 was shown to relieve the TGF-{beta} 1-induced expression of collagen I, collagen III and fibronectin; overexpression of circRNA_33702 was found to exert an inhibitory effect on the expression of the same genes. Mechanistically, circRNA_33702 was demonstrated to bind directly with miR-29b-3p and inhibit its expression. Moreover, WISP1 was identified as a target of miR-29b-3p and the expression of WISP1 was observed to be repressed by miR-29b-3p. Notably, knockdown of circRNA_33702 was found to attenuate the expression of collagen I, collagen III and fibronectin by inhibiting the expression of WISP1, and the observed inhibitory effect can be reversed by miR-29b-3p inhibitor. Finally, inhibition of circRNA_33702 was shown to attenuate interstitial fibrosis in UUO mice via the miR-29b-3p/WISP1 axis. In general, our data show that circRNA_33702 may promote renal fibrosis via the miR-29b-3p/WISP1 axis, which may potentially be developed as a new therapeutic target.

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BibTeXRIS

Ai, K., Yi, L., wang, y.. 2022-03-01. CircRNA_33702 promotes renal fibrosis by targeting the miR-29b-3p/WISP1 pathway. https://doi.org/10.1101/2022.02.28.482440

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