ArticleBioactive materials2022
Matrix stiffness exacerbates the proinflammatory responses of vascular smooth muscle cell through the DDR1-DNMT1 mechanotransduction axis.
Article in Bioactive materials, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 35 papers.
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Who cites it
35 citing papers in PubMed, 54 citations in OpenAlex.
- M1 macrophage-derived exosomal miR-155-5p exacerbates aortic dissection via SMAD5-Mediated regulation of vascular smooth muscle cell phenotype.Bioactive materials · 2026Article
- Dynamic Biomaterial: A Platform for Biomedical Applications With Multiple Preparation Strategies.Macromolecular rapid communications · 2026Review
- Risk Factors for Cardiovascular Disease: Epidemiology, Screening, Prevention, and Therapeutic Interventions.MedComm · 2026Review
- Dynamic stiffness enables stage-specific properties mediating functional endothelialization on vascular implants.Science advances · 2026Article
- 3D Printing of Biopolymer-Based Scaffolds for Bone Tissue Engineering: Materials, Fabrication, and Translational Strategies.Molecules (Basel, Switzerland) · 2026Review
- Targeting mechanosensitive EphA2 phase separation to alleviate arterial stiffening.Bioactive materials · 2026Article
- Discoidin domain receptor 1 (DDR1): An emerged novel mechanosensor.Fundamental research · 2026Review
- The extracellular matrix: structure, composition, biological functions, diseases, and therapeutic targets.Molecular biomedicine · 2026Review
- The extracellular matrix in inflammation and cancer.Molecular biomedicine · 2026Review
- S100A4 triggeres the pyroptosis of vsmcs: association with mitochondrial damage, impaired mitophagy, and CaBiology direct · 2026Article
- Identifying vascular stiffening-sensitive macrophages through integration of single-cell transcriptomics and imaging flow cytometry.Biophysics reports · 2025Article
- Vascular smooth muscle cell metabolic reprogramming and phenotypic remodeling in atherosclerosis.Cell death discovery · 2025Review
- Article
- Engineered Extraocular Muscle with Decellularized Tissue and Synthetic Biodegradable Polymers: Design, Properties, andACS biomaterials science & engineering · 2025Article
- Three-dimensional spheroid models for cardiovascular biology and pathology.Mechanobiology in medicine · 2025Review
- Utilising Human Myometrial and Uterine Fibroid Stem Cell-Derived Three Dimentional Organoids as a Robust Model System for Understanding the Pathophysiology of Uterine Fibroids.Cell proliferation · 2025Article
- Biomechanics of the tumor extracellular matrix and regulatory T cells: regulatory mechanisms and potential therapeutic targets.Cell communication and signaling : CCS · 2025Review
- Epigenetic mechanisms underlying variation of IL-6, a well-established inflammation biomarker and risk factor for cardiovascular disease.Atherosclerosis · 2025Article
- Extracellular matrix in vascular homeostasis and disease.Nature reviews. Cardiology · 2025Review
- Review
Corrections and comments
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Authors and funding
10 authors at 4 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Vascular smooth muscle cell (vSMC) is highly plastic as its phenotype can change in response to mechanical cues inherent to the extracellular matrix (ECM). VSMC may be activated from its quiescent contractile phenotype to a proinflammatory phenotype, whereby the cell secretes chemotactic and inflammatory cytokines, e.g. MCP1 and IL6, to functionally regulate monocyte and macrophage infiltration during the development of various vascular diseases including arteriosclerosis. Here, by culturing vSMCs on polyacrylamide (PA) substrates with variable elastic moduli, we discovered a role of discoidin domain receptor 1 (DDR1), a receptor tyrosine kinase that binds collagens, in mediating the mechanical regulation of vSMC gene expression, phenotype, and proinflammatory responses. We found that ECM stiffness induced DDR1 phosphorylation, oligomerization, and endocytosis to repress the expression of DNA methyltransferase 1 (DNMT1), very likely in a collagen-independent manner. The DDR1-to-DNMT1 signaling was sequentially mediated by the extracellular signal-regulated kinases (ERKs) and p53 pathways. ECM stiffness primed vSMC to a proinflammatory phenotype and this regulation was diminished by DDR1 inhibition. In agreement with the in vitro findings, increased DDR1 phosphorylation was observed in human arterial stiffening. DDR1 inhibition in mouse attenuated the acute injury or adenine diet-induced vascular stiffening and inflammation. Furthermore, mouse vasculature with SMC-specific deletion of Dnmt1 exhibited proinflammatory and stiffening phenotypes. Our study demonstrates a role of SMC DDR1 in perceiving the mechanical microenvironments and down-regulating expression of DNMT1 to result in vascular pathologies and has potential implications for optimization of engineering artificial vascular grafts and vascular networks.
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