4.8 Article

An Injectable Meta-Biomaterial: From Design and Simulation to In Vivo Shaping and Tissue induction

期刊

ADVANCED MATERIALS
卷 33, 期 41, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202102350

关键词

elastic softening; injectable metamaterials; shaping; tissue reconstruction; vascularization

资金

  1. Swiss National Science Foundation [PP00P2_163684, PP00P2_194813, PZ00P2_161347, PP00P3_183725]
  2. Gebert-Ruf foundation [GRS-0043/15]
  3. Whitaker International Fellowship
  4. Anna Fuller Fund
  5. Swiss National Science Foundation (SNF) [PP00P2_194813, PZ00P2_161347, PP00P3_183725, PP00P2_163684] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

A novel type of injectable biomaterial with elastic softening transition properties has been developed, allowing in vivo shaping and induction of stable 3D vascularized tissue. Through extensive numerical simulation, this injectable meta-biomaterial can reversibly change stiffness during deformation, potentially providing new perspectives in soft tissue engineering and regenerative medicine.
A novel type of injectable biomaterial with an elastic softening transition is described. The material enables in vivo shaping, followed by induction of 3D stable vascularized tissue. The synthesis of the injectable meta-biomaterial is instructed by extensive numerical simulation as a suspension of irregularly fragmented, highly porous sponge-like microgels. The irregular particle shape dramatically enhances yield strain for in vivo stability against deformation. Porosity of the particles, along with friction between internal surfaces, provides the elastic softening transition. This emergent metamaterial property enables the material to reversibly change stiffness during deformation, allowing native tissue properties to be matched over a wide range of deformation amplitudes. After subcutaneous injection in mice, predetermined shapes can be sculpted manually. The 3D shape is maintained during excellent host tissue integration, with induction of vascular connective tissue that persists to the end of one-year follow-up. The geometrical design is compatible with many hydrogel materials, including cell-adhesion motives for cell transplantation. The injectable meta-biomaterial therefore provides new perspectives in soft tissue engineering and regenerative medicine.

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