Search bioRxiv⌕ Search

Biology subjects

Ramste, M.

Publications and source records attributed to Ramste, M..

3 recordsLinked to original sources

An in vitro System for Studying Osteochondrogenic Differentiation of Smooth Muscle Cells and Modeling Intimal Vascular Calcification

Objective: Smooth muscle cells (SMCs) undergo phenotypic transitions during atherosclerosis, including towards a chondromyocyte (CMC) state associated with intimal calcification. Although standard in vitro calcification assays robustly reproduce mineral deposition, it remains unclear how well they recapitulate these disease-associated SMC states. We sought to define the CMC transcriptional phenotype in atherosclerosis and develop an in vitro system that faithfully reproduces it. Approach and Results: We firstly identified a CMC transcriptional signature in murine and human atherosclerotic plaque through single-cell RNA-sequencing, and spatial transcriptomics. CMCs showed a conserved osteochondrogenic program which localized within plaques and adjacent to calcified regions. We then developed an osteochondrogenic differentiation (OCD) assay by combining well-established calcification components with a high-density SMC micromass culture and TGF-{beta}1 supplementation and benchmarked it against a standard calcification (SC) assay using calcium quantification and bulk RNA-sequencing. Despite comparable calcification, OCD and SC resulted in distinct transcriptional states, with OCD showing preferential upregulation of osteochondrogenic programs, and a higher CMC signature score. Additionally, OCD upregulated genes with a stronger enrichment near coronary artery disease (CAD)-associated loci. These responses were reproducible across several primary human SMC lines. Timecourse analysis also showed that chondrogenic programs preceded calcification and showed directional concordance with the inferred in vivo SMC-to-CMC trajectory. To interrogate regulatory pathways controlling this process, we overexpressed the chondrogenic regulator SOX9, which enhanced cartilage and extracellular matrix programs while repressing inflammatory pathways. Finally, we examined 552 CAD-associated genes nominated across five genome-wide association studies. Of these, 240 were differentially expressed by day 12, and included established SMC regulators as well as a number of candidates not previously characterized in osteochondrogenic SMC transition. Conclusions: The OCD assay results in a strong calcification phenotype together with a disease-associated CMC-like transcriptional state, providing a reliable in vitro model for mechanistic investigation of SMC phenotypic transition and prioritization of candidate regulators.

cell biology↗

Aryl-hydrocarbon receptor in smooth muscle cells protect against dioxin induced adverse remodeling of atherosclerosis

IntroductionEnvironmental exposure to dioxin has been linked to increased myocardial infarction. Smooth muscle cells (SMC) in the coronary vasculature play a critical role in atherosclerotic plaque remodeling due to their phenotypic plasticity, however, the detailed mechanism linking dioxin exposure to adverse SMC modulation is not well understood. MethodsSingle-cell RNA and ATAC sequencing and histological analyses were performed on the aorta from mouse models of atherosclerosis exposed to 2,3,7,8-Tetrachlorodibenzo-p-dioxin (TCDD) or control. Primary human coronary artery SMC (HCASMC) treated in culture with TCDD were used to perform RNA-Seq, ATAC-Seq, and functional phenotypic assays. ChIP-Seq was performed with antibodies against Aryl-hydrocarbon receptor (AHR) and TCF21, two of known SMC modulating transcription factors. ResultsModulated SMC were the most transcriptionally responsive cell type to dioxin in the atherosclerotic aorta. Dioxin accelerated disease phenotype by promoting a modulated SMC phenotype early, resulting in increased lesion size, migration of SMC, and macrophage recruitment to the lesion. We found C3 expressing modulated SMCs to be likely contributing to the increased macrophage recruitment and inflammation. Analysis of the RNA-Seq data from HCASMC treated with TCDD showed differential enrichment of biological pathways related to cell migration, localization, and inflammation. Furthermore, ATAC-Seq data showed a significant activation for pathways regulating vascular development, cell migration, inflammation, and apoptosis. With TCDD treatment, there was also enrichment of AHR ChIP-Seq peaks, while the TCF21 enrichment decreased significantly. The SMC-specific Ahr knockout resulted in increased oxidative stress in SMC, increased lesion size and macrophage content, and loss of SMC lineage cells in the lesion cap when exposed to TCDD, consistent with a more vulnerable plaque phenotype. ConclusionDioxin adversely remodels atherosclerotic plaque by accelerating the SMC- phenotypic modulation, and increasing inflammation and oxidative stress resulting in increased macrophage recruitment and lesion size. Dioxin may adversely affect the SMC phenotype and disease state by affecting the TCF21 occupancy in the open chromatin regions. Furthermore, we observed that SMC-specific deletion of Ahr in mice resulted in worsening of dioxin mediated SMC modulation and atherosclerosis, suggesting that Ahr in SMC confers protection against dioxin by promoting a stable plaque phenotype and reducing dioxin induced oxidative stress. SummaryO_LIExposure to dioxin, an environmental pollutant present in tobacco smoke and air pollution, accelerates smooth muscle cell modulation, and atherosclerosis. C_LIO_LIDioxin exposure leads to inflammatory smooth muscle cell phenotype characterized by complement pathway activation and increased macrophage recruitment to plaque C_LIO_LIAryl-hydrocarbon receptor in SMC protects against oxidative stress, and promotes a stable plaque phenotype C_LI

molecular biology↗

Smooth muscle expression of RNA editing enzyme ADAR1 controls vascular integrity and progression of atherosclerosis

Mapping the genomic architecture of complex disease has been predicated on the understanding that genetic variants influence disease risk through modifying gene expression. However, recent discoveries have revealed that a significant burden of disease heritability in common autoinflammatory disorders and coronary artery disease (CAD) is mediated through genetic variation modifying post-transcriptional modification of RNA through adenosine-to-inosine (A-to-I) RNA editing. This common RNA modification is catalyzed by ADAR enzymes, where ADAR1 edits specific immunogenic double stranded RNA (dsRNA) to prevent activation of the double strand RNA (dsRNA) sensor MDA5 (IFIH1) and stimulation of an interferon stimulated gene (ISG) response. Multiple lines of human genetic data indicate impaired RNA editing and increased dsRNA sensing by MDA5 to be an important mechanism of CAD risk. Here, we provide a crucial link between observations in human genetics and mechanistic cell biology leading to progression of CAD. Through analysis of human atherosclerotic plaque and culture of human coronary artery vascular smooth muscle cells (SMCs) we implicate the SMC to have a distinct requirement for RNA editing, and that MDA5 activation regulates SMC phenotypic modulation. Through generation of a conditional SMC specific Adar1 deletion mouse model on a pro-atherosclerosis background with additional constitutive deletion of MDA5 (Ifih1), and with incorporation of single cell RNA sequencing cellular profiling, we further show that Adar1 controls SMC phenotypic state by regulating Mda5 activation, is required to maintain vascular integrity, and controls progression of atherosclerosis and vascular calcification. Finally, we further corroborate our findings in a large human carotid endarterectomy dataset (Athero-Express) where we show that ISG activation is strongly associated with decreased plaque stability, increased SMC phenotypic modulation, and increased plaque calcification. Through this work, we describe a fundamental mechanism of CAD, where cell type and context specific RNA editing and sensing of dsRNA mediates disease progression, bridging our understanding of human genetics and disease causality. One Sentence SummarySmooth muscle expression of RNA editing enzyme ADAR1 regulates activation of double strand RNA sensor MDA5 in novel mechanism of atherosclerosis.

genomics↗