ArticleCell communication and signaling : CCS2023
Intracellular remodeling associated with endoplasmic reticulum stress modifies biomechanical compliance of bladder cells.
Article in Cell communication and signaling : CCS, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- DNA cross-over motifs-based, programmable supramolecular hydrogels for the mechanoregulatory effects of cellular behaviour and cytoskeleton reorganization.npj biomedical innovations · 2026Article
- Pan-cancer analysis reveals differential PERK expression across tumour types and its potential as a therapeutic target.Discover oncology · 2026Article
- Construction and simulation-experimental characterization of a fluorescence image-based finite element model for cell mechanics.Frontiers in bioengineering and biotechnology · 2026Article
- Effects of the combination of brefeldin A and tunicamycin on endoplasmic reticulum stress and apoptosis in human normal hepatocytes.Current research in toxicology · 2026Article
- Walras modulates sex-dependent endoplasmic reticulum stress in cardiomyopathy.Frontiers in physiology · 2026Article
- Retrograde rearrangement of mitochondria correlates with nuclear deformation and genotoxic damage.iScience · 2025Article
- Piezo1/ITGB1 Synergizes With CaCancer medicine · 2025Article
- Mechanical cues rewire lipid metabolism and support chemoresistance in epithelial ovarian cancer cell lines OVCAR3 and SKOV3.Cell communication and signaling : CCS · 2025Article
- Measuring age-dependent viscoelasticity of organelles, cells and organisms with time-shared optical tweezer microrheology.Nature nanotechnology · 2025Article
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7 authors.
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Abstract
Bladder cells face a challenging biophysical environment: mechanical cues originating from urine flow and regular contraction to enable the filling voiding of the organ. To ensure functional adaption, bladder cells rely on high biomechanical compliance, nevertheless aging or chronic pathological conditions can modify this plasticity. Obviously the cytoskeletal network plays an essential role, however the contribution of other, closely entangled, intracellular organelles is currently underappreciated. The endoplasmic reticulum (ER) lies at a crucial crossroads, connected to both nucleus and cytoskeleton. Yet, its role in the maintenance of cell mechanical stability is less investigated. To start exploring these aspects, T24 bladder cancer cells were treated with the ER stress inducers brefeldin A (10-40nM BFA, 24 h) and thapsigargin (0.1-100nM TG, 24 h). Without impairment of cell motility and viability, BFA and TG triggered a significant subcellular redistribution of the ER; this was associated with a rearrangement of actin cytoskeleton. Additional inhibition of actin polymerization with cytochalasin D (100nM CytD) contributed to the spread of the ER toward cell periphery, and was accompanied by an increase of cellular stiffness (Young´s modulus) in the cytoplasmic compartment. Shrinking of the ER toward the nucleus (100nM TG, 2 h) was related to an increased stiffness in the nuclear and perinuclear areas. A similar short-term response profile was observed also in normal human primary bladder fibroblasts. In sum, the ER and its subcellular rearrangement seem to contribute to the mechanical properties of bladder cells opening new perspectives in the study of the related stress signaling cascades. Video Abstract.
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