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April 18, 2026Science8 citations

Guidance of cellular nematic elastomers into shape-programmable living surfaces

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PGPau GuillamatWMWaleed MirzaPBPradeep K. Bal

Key Points

  • To develop a method for programming tissue-shape transformations using nematic organization of cellular forces.
  • Introduced a strategy involving nematic organization to program tissue shapes.
  • Utilized theoretical framework linking contractile nematics with thin-sheet mechanics.
  • Experimentally assessed tissue behavior upon detachment to study deformations.
  • Demonstrated that nematic order can guide active stresses for controlled morphogenesis.
  • Generated reproducible three-dimensional shapes through detachment of nematic tissues.
  • Established a framework for designing shape-programmable living surfaces.

Abstract

Engineering living materials that autonomously morph into predetermined shapes holds potential for synthetic morphogenesis and soft robotics. Harnessing cellular tissues to self-organize and generate forces offers a promising route toward this goal. However, controlling tissue mechanics to direct morphogenesis remains challenging. We introduce a strategy to program tissue-shape transformations through nematic organization of cellular forces. By controlling nematic order and topological defects, we generate tissues programmed with specific stress fields. Using a theoretical framework coupling contractile nematics with thin-sheet mechanics, we show that nematically guided active stresses can drive morphogenesis through Gaussian morphing. Experimentally, detachment of nematic tissues triggers out-of-plane deformations, generating reproducible three-dimensional shapes. Integrating contractility and nematic patterning, our approach establishes a framework for designing shape-programmable living surfaces.

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Cite This Study

Guillamat et al. (2026) studied this question.

synapsesocial.com/papers/69e31ec840886becb653e674https://doi.org/10.1126/science.adz9174
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