Lavrador Pedro, Moura Beatriz S, Almeida-Pinto José, Gaspar Vítor M, Mano João F
CICECO - Aveiro Institute of Materials, Department of Chemistry, University of Aveiro, Aveiro, Portugal.
Nat Mater. 2025 Jan;24(1):143-154. doi: 10.1038/s41563-024-01958-1. Epub 2024 Aug 8.
Leveraging human cells as materials precursors is a promising approach for fabricating living materials with tissue-like functionalities and cellular programmability. Here we describe a set of cellular units with metabolically engineered glycoproteins that allow cells to tether together to function as macrotissue building blocks and bioeffectors. The generated human living materials, termed as Cellgels, can be rapidly assembled in a wide variety of programmable three-dimensional configurations with physiologically relevant cell densities (up to 10 cells per cm), tunable mechanical properties and handleability. Cellgels inherit the ability of living cells to sense and respond to their environment, showing autonomous tissue-integrative behaviour, mechanical maturation, biological self-healing, biospecific adhesion and capacity to promote wound healing. These living features also enable the modular bottom-up assembly of multiscale constructs, which are reminiscent of human tissue interfaces with heterogeneous composition. This technology can potentially be extended to any human cell type, unlocking the possibility for fabricating living materials that harness the intrinsic biofunctionalities of biological systems.
利用人类细胞作为材料前体是制造具有组织样功能和细胞可编程性的生物材料的一种有前途的方法。在这里,我们描述了一组具有代谢工程糖蛋白的细胞单元,这些细胞单元允许细胞 tether 在一起,充当宏观组织构建块和生物效应器。所生成的人类生物材料,称为细胞凝胶,可以在具有生理相关细胞密度(每立方厘米高达 10 个细胞)、可调机械性能和可操作性的各种可编程三维配置中快速组装。细胞凝胶继承了活细胞感知和响应其环境的能力,表现出自主的组织整合行为、机械成熟、生物自我修复、生物特异性粘附以及促进伤口愈合的能力。这些生命特征还使得能够自下而上模块化组装多尺度构建体,这让人联想到具有异质组成的人体组织界面。这项技术有可能扩展到任何人类细胞类型,从而开启制造利用生物系统固有生物功能的生物材料的可能性。 (注:原文中“tether”这个词在这里不太明确其准确含义,翻译可能会稍显生硬,可根据更准确的专业知识进一步优化该词的翻译表述。)