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Schulz, V. P.

Publications and source records attributed to Schulz, V. P..

2 recordsLinked to original sources

Epigenetic Remodeling in Human Coronary Artery Smooth Muscle Cell Phenotypic Switching

BackgroundSmooth muscle cell (SMC) dedifferentiation contributes to repair and remodeling, but also cardiovascular pathologies. To understand this plasticity, the epigenetic landscape in SMC phenotypic switching was profiled. MethodsGenome-wide analyses of histone modifications (ChIP-seq), chromatin architecture (ATAC-seq), and transcriptomes (RNA-seq) were performed on human coronary artery SMCs (CASMC) treated with rapamycin (contractile phenotype) and PDGF-BB (synthetic phenotype). ResultsAnalyses of differentially acetylated promoter regions identified ZEB and ZBT7A as novel enriched regulatory motifs. There were more changes in the enhancer epigenome than in promoters in CASMC phenotypic switching. Rapamycin-activated enhancers were associated with differentiation and TGF-{beta} signaling pathways and were most enriched in TEAD, SRF and SMAD motifs, whereas PDGF-induced enhancers were associated with ERK signaling and migration pathways, and were most enriched in ETV4, SOX5, and FOS motifs. GATA, TEAD, and SMCA1 motifs were enriched in CASMC enhancer open chromatin compared to other cell types. Candidate enhancers with single nucleotide polymorphisms linked to cardiovascular disease were markedly enriched in active enhancers and super enhancers and showed significant activity in reporter assays. In CASMC promoters and enhancers, common regulatory motifs were often enriched in both the differentiated and dedifferentiated phenotypes, suggesting that differential cofactor binding, as occurs with SRF at CArG elements, may be a more widespread mechanism underlying phenotypic switching. ConclusionsThese data identify novel regulatory elements engaged in SMC phenotypic switching and provide a comprehensive profile of SMC promoters, enhancers, super enhancers, and chromatin accessibility as a significant resource for studies of CASMC phenotype. Research PerspectiveO_ST_ABSWhat Is New?C_ST_ABSO_LIThis work identifies key regulatory elements and widespread changes in chromatin accessibility engaged in SMC phenotypic switching, including novel motifs enriched in promoters and enhancers. In CASMC promoters and enhancers, common regulatory motifs were often enriched in both the differentiated and dedifferentiated phenotypes, suggesting that differential cofactor binding, as occurs with SRF at CArG elements, may be a more widespread mechanism underlying phenotypic switching. C_LIO_LIThis work identifies distinct enhancer profiles: enhancers activated by rapamycin were associated with TGF-{beta} signaling and differentiation, while PDGF-induced enhancers were associated with ERK signaling and migration. C_LIO_LIEnhancer elements containing single nucleotide polymorphisms (SNPs) associated with cardiovascular disease from genome wide association studies (GWAS) showed notable enrichment across active enhancers and super enhancers. Select enhancers demonstrated statistically significant activity in reporter gene assays. C_LI What Question Should Be Addressed Next?O_LIThe cis regulatory elements identified in this work suggest new transcription factors that can be tested to determine whether and how they may influence SMC phenotypic modulation. C_LIO_LIThese studies could be extended to other stimuli to identify epigenomic signatures associated with CASMC transitions to other phenotypes including macrophages and chondrocytes. C_LI

genomics↗

BMI1 regulates human erythroid self-renewal through both gene repression and gene activation

The limited proliferative capacity of erythroid precursors is a major obstacle to generate sufficient numbers of in vitro-derived red blood cells (RBC) for clinical purposes. We and others have determined that BMI1, a member of the polycomb repressive complex 1 (PRC1), is both necessary and sufficient to drive extensive proliferation of self-renewing erythroblasts (SREs). However, the mechanisms of BMI1 action remain poorly understood. BMI1 overexpression led to 10 billion-fold increase BMI1-induced (i)SRE self-renewal. Despite prolonged culture and BMI1 overexpression, human iSREs can terminally mature and agglutinate with typing reagent monoclonal antibodies against conventional RBC antigens. BMI1 and RING1B occupancy, along with repressive histone marks, were identified at known BMI1 target genes, including the INK-ARF locus, consistent with an altered cell cycle following BMI1 inhibition. We also identified upregulated BMI1 target genes with low repressive histone modifications, including key regulator of cholesterol homeostasis. Functional studies suggest that both cholesterol import and synthesis are essential for BMI1-associated self-renewal. These findings support the hypothesis that BMI1 regulates erythroid self-renewal not only through gene repression but also through gene activation and offer a strategy to expand the pool of immature erythroid precursors for eventual clinical uses.

cell biology↗