ArticleMaterials today. Bio2023
Stiffened fibre-like microenvironment based on patterned equidistant micropillars directs chondrocyte hypertrophy.
Article in Materials today. Bio, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers.
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Who cites it
13 citing papers in PubMed, 19 citations in OpenAlex.
- FGF19 promotes cartilage destruction in the progress of temporomandibular joint osteoarthritis.Cell and tissue research · 2026Article
- Microenvironmental stiffness directs microtubule perturbation in chondrocyte mitosis via ILK-refilinB/Smad3 axis.Bone research · 2026Article
- Diabetes-Related Metabolic Osteoarthritis: Advanced Glycation-Collagen Axis, Cartilage Stiffening, and Biomaterials-Based Therapeutic Strategies.International journal of nanomedicine · 2026Review
- Microneedle-Based DNA Tension Gauge Tethers Enable In Vivo Monitoring of Cell Mechanics during Skin Tissue Regeneration.JACS Au · 2025Article
- A Molecular Chemical Perspective: Mitochondrial Dynamics Is Not a Bystander of Cartilage Diseases.ACS pharmacology & translational science · 2025Review
- FGF8 promotes lipid droplet accumulation via the FGFR1/p-p38 axis in chondrocytes.Acta biochimica et biophysica Sinica · 2025Article
- Matrix stiffness in osteoarthritis: from mechanism introduction to biomaterial-based therapies.Frontiers in endocrinology · 2025Review
- Fibroblast Growth Factor 19 Disrupts Cartilage Development Via the FGFR4/β-catenin Axis.International journal of biological sciences · 2025Article
- Outer Membrane Vesicles Derived From Fusobacterium nucleatum Trigger Periodontitis Through Host Overimmunity.Advanced science (Weinheim, Baden-Wurttemberg, Germany) · 2024Article
- Ubiquitination and deubiquitination: Implications for the pathogenesis and treatment of osteoarthritis.Journal of orthopaedic translation · 2024Review
- Exosomes loaded a smart bilayer-hydrogel scaffold with ROS-scavenging and macrophage-reprogramming properties for repairing cartilage defect.Bioactive materials · 2024Article
- TGF-β3 mediates mitochondrial dynamics through the p-Smad3/AMPK pathway.Cell proliferation · 2024Article
- FGF19 induces the cell cycle arrest at G2-phase in chondrocytes.Cell death discovery · 2023Article
Corrections and comments
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Authors and funding
10 authors at 1 institution in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Articular cartilage, composed of collagen type II as a major extracellular matrix and chondrocyte as a unique cell type, is a specialized connective tissue without blood vessels, lymphatic vessels and nerves. This distinctive characteristic of articular cartilage determines its very limited ability to repair when damaged. It is well known that physical microenvironmental signals regulate many cell behaviors such as cell morphology, adhesion, proliferation and cell communication even determine chondrocyte fate. Interestingly, with increasing age or progression of joint diseases such as osteoarthritis (OA), the major collagen fibrils in the extracellular matrix of articular cartilage become larger in diameter, leading to stiffening of articular tissue and reducing its resistance to external tension, which in turn aggravates joint damage or progression of joint diseases. Therefore, designing a physical microenvironment closer to the real tissue and thus obtaining data closer to the real cellular behaviour, and then revealing the biological mechanisms of chondrocytes in pathological states is of crucial importance for the treatment of OA disease. Here we fabricated micropillar substrates with the same topology but different stiffnesses to mimic the matrix stiffening that occurs in the transition from normal to diseased cartilage. It was first found that chondrocytes responded to stiffened micropillar substrates by showing a larger cell spreading area, a stronger enhancement of cytoskeleton rearrangement and more stability of focal adhesion plaques. The activation of Erk/MAPK signalling in chondrocytes was detected in response to the stiffened micropillar substrate. Interestingly, a larger nuclear spreading area of chondrocytes at the interface layer between the cells and top surfaces of micropillars was observed in response to the stiffened micropillar substrate. Finally, it was found that the stiffened micropillar substrate promoted chondrocyte hypertrophy. Taken together, these results revealed the cell responses of chondrocytes in terms of cell morphology, cytoskeleton, focal adhesion, nuclei and cell hypertrophy, and may be beneficial for understanding the cellular functional changes affected by the matrix stiffening that occurs during the transition from a normal state to a state of osteoarthritis.
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