Rpl13a snoRNAs Downregulate Smooth Muscle Cell COX4I2 and Promote Neointimal Hyperplasia
Elliott, B. A.; Zhang, L.; Wu, J.-H.; Wu, P.-C.; Yin, X.; Soderblom, E. J.; Snow, K.; Waitt, G.; Holley, C. L.; Freedman, N. J.
Show abstract
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.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Female gene networks are expressed in myofibroblast-like smooth muscle cells in vulnerable atherosclerotic plaques. 95%
- Single-Cell Multimodal Profiling Reveals a Novel CD26+ Fibroblast Subpopulation in Atherosclerosis 95%
- High-Dimensional Single-Cell Multimodal Landscape of Human Carotid Atherosclerosis 95%
Similar papers in this journal
- EPAS1 Attenuates Atherosclerosis Initiation at Disturbed Flow Sites through Endothelial Fatty Acid Uptake 94%
- Immunoproteasomal Processing of Isolevuglandin Adducts in Hypertension 94%
- Non-canonical Telomerase Reverse Transcriptase Controls Osteogenic Reprogramming of Aortic Valve Cells Through STAT5 93%
Similar papers in this journal
- The environment-sensing aryl-hydrocarbon receptor inhibits the chondrogenic fate of modulated smooth muscle cells in atherosclerotic lesions 96%
- Epitranscriptomic Modification of MicroRNA Increases Atherosclerosis Susceptibility 95%
- Second Heart Field-derived Cells Contribute to Angiotensin II-mediated Ascending Aortopathies 94%
Similar papers in this journal
- Smooth muscle expression of RNA editing enzyme ADAR1 controls activation of RNA sensor MDA5 in atherosclerosis 96%
- The VE-cadherin/AmotL2 mechanosensory pathway suppresses aortic inflammation and the formation of abdominal aortic aneurysms 95%
- PRDM16 controls smooth muscle cell fate in atherosclerosis 95%
Similar papers in this journal
- Aging-induced isoDGR-modified fibronectin activates monocytic and endothelial cells to promote atherosclerosis 94%
- Sex-dependent gene regulation of human atherosclerotic plaques by DNA methylation and transcriptome integration points to smooth muscle cell involvement in women. 93%
- Galectin-1 induces macrophage immunometabolic reprogramming, modulates T cell immunity and attenuates atherosclerotic plaque formation 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.