ArticlePNAS nexus2025
Mechanical cues guide the formation and patterning of 3D spheroids in fibrous environments.
Article in PNAS nexus, 2025. 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.
- Shape factor analysis as a quantitative framework for assessing spheroid and organoid morphology and invasiveness.APL bioengineering · 2026Article
- Efficient spatio-angular reconstruction enables high-fidelity mapping of six-dimensional structures and dynamics with polarized fluorescence microscopy.Nature communications · 2026Article
- Scaling-Up Vertical-Wheel Bioreactors Based on Cell Aggregate Exposure to Shear Stress and Energy Dissipation Rate.Annals of biomedical engineering · 2026Article
- Shape Factor Analysis as a Quantitative Framework for Assessing Spheroid and Organoid Morphology and Invasiveness.bioRxiv : the preprint server for biology · 2026Article
- An animal component-free bioprocess for synthesizing 3D human matrix scaffolds using mesenchymal stromal cells.Frontiers in cell and developmental biology · 2026Article
- Deep learning reveals how cells pull, buckle, and navigate fibrous environments.Proceedings of the National Academy of Sciences of the United States of America · 2025Article
- 3D Breast Cancer Spheroids Reveal Architecture-Dependent HER2 Expression and Signaling.Biology · 2025Article
- Observing biological spatio-angular structures and dynamics with statistical image reconstruction and polarized fluorescence microscopy.bioRxiv : the preprint server for biology · 2025Article
- Neural growth patterns: how random and aligned fibers guide 3D cell organization and pseudospheroid formation.Frontiers in bioengineering and biotechnology · 2025Article
Corrections and comments
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Authors and funding
12 authors.
Funding
Abstract
Multicellular spheroids have shown great promise in 3D biology. Many techniques exist to form spheroids, but how cells take mechanical advantage of native fibrous extracellular matrix (ECM) to form spheroids remains unknown. Here, we identify the role of fiber diameter, architecture, and cell contractility on spheroids' spontaneous formation and growth in ECM-mimicking fiber networks. We show that matrix deformability revealed through force measurements on aligned fiber networks promotes spheroid formation independent of fiber diameter. At the same time, larger-diameter crosshatched networks of low deformability abrogate spheroid formation. Thus, designing fiber networks of varying diameters and architectures allows spatial patterning of spheroids and monolayers simultaneously. Forces quantified during spheroid formation revealed the contractile role of Rho-associated protein kinase in spheroid formation and maintenance. Interestingly, we observed spheroid-spheroid and multiple spheroid mergers initiated by cell exchanges to form cellular bridges connecting the two spheroids. Unexpectedly, we found large pericyte spheroids contract rhythmically. Transcriptomic analysis revealed striking changes in cell-cell, cell-matrix, and mechanosensing gene expression profiles concordant with spheroid assembly on fiber networks. Overall, we ascertained that contractility and network deformability work together to spontaneously form and pattern 3D spheroids, potentially connecting in vivo matrix biology with developmental, disease, and regenerative biology.
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