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Biology subjects

Wu, J.-H.

Publications and source records attributed to Wu, J.-H..

2 recordsLinked to original sources

Rpl13a snoRNAs Downregulate Smooth Muscle Cell COX4I2 and Promote Neointimal Hyperplasia

BACKGROUNDReactive oxygen species (ROS) augment the activation of vascular smooth muscle cells (SMCs) and promote neointimal hyperplasia evoked by arterial injury or atherogenesis. We have previously shown that small nucleolar RNAs (snoRNAs) from the Rpl13a locus are key regulators of cellular ROS levels. METHODSUsing mice deficient in the Rpl13a snoRNAs, we tested whether these snoRNAs regulate SMC activation in vitro and in vivo. Carotid endothelial denudation was used to provoke neointimal hyperplasia in wild-type (WT) and snoRNA knockout (snoKO) mice, which lack all four intronically-encoded Rpl13a snoRNAs. Primary SMCs from WT and snoKO mice were used for in vitro functional and proteomic analyses. HEK293T cells with specific snoRNA deletions were used to test for snoRNA-guided 2-O-methylation of mRNA. RESULTSArterial ROS levels, inflammation, and carotid artery neointimal hyperplasia were reduced in snoKO compared with WT mice. In vitro, snoKO SMCs demonstrated lower ROS levels and less migration, proliferation, and inflammatory signaling than WT SMCs. Reduced ROS levels in snoKO SMCs and aortas correlated with upregulation of the mitochondrial protein COX4I2, which is associated with reduced mitochondrial ROS under normoxic conditions. Deleting the snoRNA U32A in human HEK293T cells decreased 2-O-methylation of COX4I2 mRNA and upregulated COX4I2 protein without changing COX4I2 mRNA levels. Silencing Cox4i2 in snoKO SMCs upregulated SMC ROS to WT levels. CONCLUSIONSRpl13a snoRNAs are important drivers of SMC activation and neointimal hyperplasia. Rpl13a snoRNAs augment SMC ROS levels, at least in part, by post-transcriptional downregulation of COX4I2 expression.

molecular biology↗

Inflammation-induced endothelial cell activation and angiogenic sprouting are downmodulated by ubiquitin-specific peptidase 20

Nuclear factor-{kappa}B (NF-{kappa}B) mediates inflammation-driven angiogenesis, which promotes the growth of atherosclerotic plaques and tumors. The deubiquitinase ubiquitin-specific peptidase 20 (USP20) suppresses NF-{kappa}B activation in vascular smooth muscle cells (SMCs) and attenuates atherosclerosis. Phosphorylation of USP20 at Ser334 increases NF-{kappa}B signaling in SMCs. However, the role of USP20 in endothelial cells (ECs) remains undefined. We therefore tested whether USP20 activity diminishes NF-{kappa}B signaling in ECs and thereby diminishes angiogenesis. Cytokine-induced NF-{kappa}B activity was elevated in primary ECs isolated from Usp20-/- mice as compared with ECs from wild-type (WT) mice. Concordantly, cytokine-induced NF-{kappa}B activity was elevated in mouse coronary ECs (MCECs) expressing dominant-negative USP20 (USP20-DN) or phospho-mimetic USP20 (USP20-S334D), but blunted in MCECs expressing WT USP20 (USP20-WT) or phospho-resistant USP20 (USP20-S334A). MCEC migration and spheroid sprouting/angiogenesis were increased with overexpression of USP20-DN or USP20-S334D, but decreased with overexpression of USP20-WT or USP20-S334A. Angiogenesis assessed by the aortic ring assay was significantly increased in Usp20-/- aortas and suppressed by TPCA-1, an inhibitor of NF-{kappa}B signaling. Angiogenesis was augmented in Usp20-S334D aortic rings but reduced in Usp20-S334A aortic rings. By screening known angiogenic factors, we identified matrix metalloproteinase 3 (MMP-3), a transcriptional target of NF-{kappa}B, as a gene that is also regulated by USP20 expression. Inhibiting MMP-3 reduced angiogenic sprouting in the Usp20-/- mouse aortic rings. We conclude that USP20 expression inversely correlates with the extent of angiogenesis, and that inhibiting USP20 Ser334 phosphorylation could be a useful strategy to constrain inflammation-driven angiogenesis in pathological conditions like solid tumor malignancies and atherosclerosis.

cancer biology↗