bioRxiv Science⌕ Search

Biology subjects

Chouhaita, R.

Publications and source records attributed to Chouhaita, R..

3 recordsLinked to original sources

A regulatory role of novel long non-coding RNA, BAZ1A-AS1, in vascular smooth muscle cell functions during neointima formation in human saphenous veins

BackgroundNeointimal proliferation (NP) is a major cause of stenosis and occlusion in arteries and veins. Human saphenous veins (HSV), often used for coronary artery bypass grafting, frequently fail in part due to NP. Long non-coding RNAs (lncRNAs) have emerged as critical regulators of vascular smooth muscle cell (VSMC) phenotype, yet lncRNAs governing NP in human veins remain largely uncharacterized. Methods and ResultsUsing an ex vivo model of NP in human SV, we performed bulk RNA sequencing on SV tissues with and without NP. Among differentially expressed lncRNAs, we identified a previously uncharacterized transcript, Bromodomain Adjacent to Zinc Finger A1 antisense 1 (BAZ1A-AS1), and its predicted cis-regulatory partner gene BAZ1A, as markedly upregulated during NP and predominantly enriched in VSMCs. Both transcripts were induced by genotoxic stimuli, with BAZ1A-AS1 showing transient induction preceding sustained BAZ1A upregulation, consistent with a priming role in the DNA damage response. Silencing of either BAZ1A-AS1 or BAZ1A attenuated VSMC proliferation and migration, accompanied by upregulation of contractile markers and suppression of proliferative and inflammatory transcriptional programs. ChIRP-qPCR demonstrated that BAZ1A-AS1 physically interacts with 3' distal exons of BAZ1A at the DNA level while selectively engaging CNN1, CCND1, and IL6 mRNAs, indicating mechanistically distinct chromatin- and RNA-level regulatory functions. Baz1a haploinsufficiency attenuated neointima formation and preserved VSMC contractile identity in a mouse carotid artery ligation model. ConclusionsWe identify BAZ1A-AS1 and BAZ1A as stress-responsive regulators of VSMC phenotype, operating through dual mechanisms of cis-regulatory chromatin interaction and selective mRNA engagement, and demonstrate a novel role for the BAZ1A-AS1/BAZ1A axis in promoting NP.

physiology↗

Integrative multiomics analysis of neointima proliferation in human saphenous vein: implications for bypass graft disease

IntroductionHuman saphenous veins (SV) are widely used as grafts in coronary artery bypass (CABG) surgery but often fail due to neointima proliferation (NP). NP involves complex interplay between vascular smooth muscle cells (VSMC) and fibroblasts. Little is known, however, regarding the transcriptomic and proteomic dynamics of NP. Here, we performed multi-omics analysis in an ex vivo tissue culture model of NP in human SV procured for CABG surgery. Methods and resultsHistological examination demonstrated significant elastin degradation and NP (indicated by increased neointima area and neointima/media ratio) in SV subjected to tissue culture. Analysis of data from 73 patients suggest that the process of SV adaptation and NP may differ according to sex and body mass index. RNA sequencing confirmed upregulation of pro-inflammatory and proliferation-related genes during NP and identified novel processes, including increased cellular stress and DNA damage responses, which may reflect tissue trauma associated with SV harvesting. Proteomic analysis identified upregulated extracellular matrix-related and coagulation/thrombosis proteins and downregulated metabolic proteins. Spatial transcriptomics detected transdifferentiating VSMC in the intima on the day of harvesting and highlighted dynamic alterations in fibroblast and VSMC phenotype and behavior during NP. Specifically, we identified new cell subpopulations contributing to NP, including SPP1+, LGALS3+ VSMC and MMP2+, MMP14+ fibroblasts. ConclusionDynamic alterations of gene and protein expression occur during NP in human SV. Identification of the human-specific molecular and cellular mechanisms may provide novel insight into SV bypass graft disease.

genomics↗

Hepatocyte-specific disruption of soluble epoxide hydrolase attenuates abdominal aortic aneurysm formation: novel role of the liver in aneurysm pathogenesis

IntroductionInflammation is a key pathogenic feature of abdominal aortic aneurysm (AAA). Soluble epoxide hydrolase (sEH) is a pro-inflammatory enzyme that converts cytochrome P450-derived epoxides of fatty acids to the corresponding diols, and pharmacological inhibition of sEH prevented AAA formation. Both cytochrome P450 enzymes and sEH are highly expressed in the liver. Here, we investigated the role of hepatic sEH in AAA using a selective pharmacological inhibitor of sEH and hepatocyte-specific Ephx2 (which encodes sEH gene) knockout (KO) mice in two models of AAA [angiotensin II (AngII) infusion and calcium chloride (CaCl2) application]. Methods and resultssEH expression and activity were strikingly higher in mouse liver compared with aorta and further increased the context of AAA, in conjunction with elevated expression of the transcription factor Sp1 and the epigenetic regulator Jarid1b, which have been reported to positively regulate sEH expression. Pharmacological sEH inhibition, or liver-specific sEH disruption, achieved by crossing sEH floxed mice with albumin-cre mice, prevented AAA formation in both models, concomitant with reduced expression of hepatic sEH as well as complement factor 3 (C3) and serum amyloid A (SAA), liver-derived factors linked to AAA formation. Moreover, sEH antagonism markedly reduced C3 and SAA protein accumulation in the aortic wall. Co-incubation of liver ex vivo with aneurysm-prone aorta resulted in induction of sEH in the liver, concomitant with upregulation of Sp1, Jarid1b, C3 and SAA gene expression, suggesting that the aneurysm-prone aorta secretes factors that activate sEH and downstream inflammatory signaling in the liver. Using an unbiased proteomic approach, we identified a number of dysregulated proteins [e.g., plastin-2, galectin-3 (gal-3), cathepsin S] released by aneurysm-prone aorta as potential candidate mediators of hepatic sEH induction. ConclusionWe provide the first direct evidence of the livers role in orchestrating AAA via the enzyme sEH. These findings not only provide novel insight into AAA pathogenesis, but they have potentially important implications with regard to developing effective medical therapies for AAA.

pharmacology and toxicology↗