Biomaterials-modulated multicellular crosstalk in 3D bioprinted constructs

多细胞生物 串扰 3D生物打印 再生(生物学) 细胞生物学 生物 组织工程 旁分泌信号 再生医学 电池类型 神经科学 细胞分化 血管生成 功能(生物学) 细胞 细胞命运测定 生物有机体 纳米技术 计算机科学
作者
Shijie Cao,Hongshi Ma,Chengtie Wu
出处
期刊: [Elsevier BV]
卷期号:1 (1): 100008-100008
标识
DOI:10.1016/j.advim.2025.100008
摘要

3D bioprinted scaffolds, dynamically regulated by bioactive biomaterials, have emerged as a promising strategy for tissue engineering. A major challenge of 3D bioprinted constructs lies in accurately replicating the intricate architecture and physiological complexity of native tissues. However, the conventional mono-cellular constructs exhibited limited biological function (such as immunomodulation, angiogenesis and neurogenesis etc.), due to the simplicity of cell types. Therefore, it is of great significance to elucidate the biomaterials-modulated cellular communication mechanism within multicellular scaffolds, as well as to reveal coordinated regeneration mechanisms of multiple tissues in vivo . In this review, the advancements in bioink compositions and spatial architectures of the bioprinted multicellular scaffolds were first summarized, with a focus on biomimetic multicellular structure, such as upper-lower layer, inner-outer layer and patterned structure. The regulatory mechanisms underlying how biomaterials modulate multicellular crosstalk in bioprinted scaffolds were systematically highlighted and summarized, including the exchange of secretory proteins, the stimulation of paracrine secretion, the regulation of cell differentiation and so on. Furthermore, the stimulatory effect and critical role of multicellular scaffolds in the application of complex tissue engineering were elucidated. This review elaborates on the multicellular construction strategies and multicellular crosstalk mechanisms in 3D bioprinted constructs, which are of great importance for the future development of 3D bioprinted biomaterials with advanced tissue regeneration strategies.
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