ArticleCell death & disease2026
Stiff matrix-induced KRTAP2-3 expression suppresses ciliogenesis via actin tension-driven chromatin remodeling.
Article in Cell death & disease, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 1 paper.
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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
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Who cites it
1 citing paper in PubMed.
- Primary cilium as a sensory organelle and metabolic hub in health and diseases.Journal of biomedical science · 2026Review
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17 authors.
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Abstract
Primary cilia are sensory organelles that project from the cell surface and play vital roles in cell signaling pathways essential for development and homeostasis. However, the mechanotransduction pathways through which cells perceive and respond to matrix rigidity to regulate ciliogenesis remain poorly understood. In this study, we find that increased matrix stiffness significantly reduces primary cilia formation compared to soft matrix. Disruption of actin polarization of cells on stiff matrix restores ciliation, indicating the actin cytoskeleton as a pivotal transducer of mechanical signals in this process. RNA sequencing identifies significant upregulation of KRTAP2-3 (keratin-associated protein 2-3) mRNA in cells on stiff matrix. Functional assays reveal that knockdown of KRTAP2-3 reverses the stiffness-induced inhibition of ciliogenesis. Additionally, actin polarization on stiff matrix promotes KRTAP2-3 expression, thereby inhibiting cilia formation. Further mechanistic studies show that actin cytoskeleton tension induces nuclear deformation and alters nuclear architecture, thereby enhancing chromatin accessibility at the KRTAP2-3 gene locus, which leads to the activation of KRTAP2-3 transcription. Collectively, these results suggest a previously unrecognized mechanotransduction pathway in which matrix stiffness drives actin cytoskeleton tension-dependent nuclear deformation, chromatin remodeling, and upregulation of KRTAP2-3, ultimately leading to the suppression of ciliogenesis.
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