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Engineering Layered Magnetic Hydrogels for Cell Placement via Shear and Magnetic Field?Induced Assembly

Magnetic particles are organized into layered architectures by combining shear flow and magnetic fields, with the resulting structures governed by appropriate Mason numbers. The programmed assemblies provide spatial guidance for cell placement, linking field?controlled self?assembly, flow?induced structuring and biological organization. This strategy offers a versatile route to engineer anisotropic magnetic soft matter with designed microstructure and function.ABSTRACTThe design of hydrogel?based artificial tissues capable of reversible, programmed, and complex motions requires both stimuli?responsiveness and structural anisotropy. In this work, non?unidirectional anisotropies are generated in biocompatible hydrogels by structuring magnetic particle suspensions into lamellar architectures through two distinct routes: the application of an unsteady magnetic field to a quiescent sample, and the superposition of a steady magnetic field with shear flow. In both approaches, magnetic particles undergo directed self?assembly within a polymer matrix that subsequently gels, thereby preserving the formed structures. We analyze the assembly kinetics, characterize the resulting lamellar patterns, and construct phase diagrams for each method. The morphology and periodicity of the lamellae are shown to depend strongly on geometric confinement, enabling tunable interlamellar spacing from tens to hundreds of microns. Crucially, it is demonstrated that the resulting layered hydrogels can confine human fibroblasts between adjacent particle?rich lamellae, maintain cell viability above 95% over 7 days of culture, and promote preferential cell alignment parallel to the layered structures. These findings establish magnetic field?directed lamellar structuring as a versatile route to anisotropic hydrogels with programmable internal architecture, opening new opportunities in tissue engineering, bioactuation, and soft robotics.

Publication date: 01/07/2026

Advanced Materials

      

This project has received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 870292.