Skillin Nathaniel P, Danielsen Lorin, Kirkpatrick Bruce E, Hoang Jonathan D, Hibbard Lea Pearl, Anseth Kristi S, White Timothy J
Department of Chemical and Biological Engineering, University of Colorado Boulder, Boulder, CO, 80303, USA.
The BioFrontiers Institute, University of Colorado Boulder, Boulder, CO, 80303, USA.
Adv Funct Mater. 2025 Aug 7. doi: 10.1002/adfm.202518226.
Tissue development and regeneration are governed by processes that span subcellular signaling, cell-cell interactions, and the integrated mechanical properties of cellular collectives with their extracellular matrix. Synthetic biomaterials that can emulate the hierarchical structure and supracellular mechanics of living systems are paramount to the realization of regenerative medicine. Recent reports detail directed cell alignment on mechanically anisotropic but stiff liquid crystalline polymer networks (LCNs). While compelling, the potential implementation of these materials as tissue engineering scaffolds may be hindered by the orders of magnitude larger stiffness than most soft tissue. Accordingly, this report prepares liquid crystalline hydrogels (LCHs) that synergize the anisotropic mechanical properties intrinsic to LCNs with the cytocompatibility and soft mechanics of PEG hydrogels. LCH are prepared via sequential oligomerization and photopolymerization reactions between liquid crystalline (LC) monomers and poly(ethylene glycol) (PEG)-dithiol. Despite their low liquid crystalline content, swollen LCH oligomers are amenable to rheological alignment via direct ink write 3D printing. Mechanically anisotropic LCHs support C2C12 myoblast culture on their surface and direct their alignment in the stiffest direction. Further, C2C12s can be encapsulated within LCH oligomers and 3D-printed, whereby mechanical anisotropy of the LCH directs myoblast polarization in 3D.
组织发育和再生受多种过程的调控,这些过程涵盖亚细胞信号传导、细胞间相互作用以及细胞聚集体与其细胞外基质的综合力学特性。能够模拟生命系统层次结构和超细胞力学的合成生物材料对于再生医学的实现至关重要。最近的报告详细描述了在机械各向异性但坚硬的液晶聚合物网络(LCNs)上实现定向细胞排列。尽管很有吸引力,但这些材料作为组织工程支架的潜在应用可能会受到其刚度比大多数软组织大几个数量级的阻碍。因此,本报告制备了液晶水凝胶(LCHs),它将LCNs固有的各向异性力学性能与聚乙二醇(PEG)水凝胶的细胞相容性和柔软力学特性相结合。LCH是通过液晶(LC)单体与聚乙二醇(PEG)-二硫醇之间的顺序低聚和光聚合反应制备的。尽管其液晶含量较低,但溶胀的LCH低聚物可通过直接喷墨写入3D打印实现流变学排列。具有机械各向异性的LCHs在其表面支持C2C12成肌细胞培养,并引导它们在最硬的方向上排列。此外,C2C12细胞可以封装在LCH低聚物中并进行3D打印,由此LCH的机械各向异性在3D中引导成肌细胞极化。