Center for Life Nano Science, Istituto Italiano di Tecnologia, Rome, Italy.
Am J Physiol Cell Physiol. 2020 Sep 1;319(3):C465-C480. doi: 10.1152/ajpcell.00124.2020. Epub 2020 Jul 8.
Bioprinting aims to direct the spatial arrangement in three dimensions of cells, biomaterials, and growth factors. The biofabrication of clinically relevant constructs for the repair or modeling of either diseased or damaged tissues is rapidly advancing, resulting in the ability to three-dimensional (3D) print biomimetic platforms which imitate a large number of tissues in the human body. Primary tissue-specific cells are typically isolated from patients and used for the fabrication of 3D models for drug screening or tissue repair purposes. However, the lack of resilience of these platforms, due to the difficulties in harnessing, processing, and implanting patient-specific cells can limit regeneration ability. The printing of stem cells obviates these hurdles, producing functional in vitro models or implantable constructs. Advancements in biomaterial science are helping the development of inks suitable for the encapsulation and the printing of stem cells, promoting their functional growth and differentiation. This review specifically aims to investigate the most recent studies exploring innovative and functional approaches for the printing of 3D constructs to model disease or repair damaged tissues. Key concepts in tissue physiology are highlighted, reporting stem cell applications in biofabrication. Bioprinting technologies and biomaterial inks are listed and analyzed, including recent advancements in biomaterial design for bioprinting applications, commenting on the influence of biomaterial inks on the encapsulated stem cells. Ultimately, most recent successful efforts and clinical potentials for the manufacturing of functional physiological tissue substitutes are reported here, with a major focus on specific tissues, such as vasculature, heart, lung and airways, liver, bone and muscle.
生物打印旨在指导细胞、生物材料和生长因子在三维空间中的排列。用于修复或模拟患病或受损组织的临床相关构建物的生物制造正在迅速发展,从而能够三维(3D)打印仿生平台,模拟人体中的大量组织。通常从患者中分离出原发性组织特异性细胞,并用于制造用于药物筛选或组织修复目的的 3D 模型。然而,由于难以利用、处理和植入患者特异性细胞,这些平台缺乏弹性,限制了再生能力。干细胞的打印消除了这些障碍,产生功能性体外模型或可植入的构建物。生物材料科学的进步有助于开发适合封装和打印干细胞的墨水,促进其功能生长和分化。本综述特别旨在研究探索用于模拟疾病或修复受损组织的 3D 构建物打印的创新和功能方法的最新研究。突出了组织生理学的关键概念,报告了干细胞在生物制造中的应用。列出并分析了生物打印技术和生物材料墨水,包括生物打印应用中生物材料设计的最新进展,评论了生物材料墨水对封装干细胞的影响。最终,报告了这里最近在功能性生理组织替代物制造方面的成功努力和临床潜力,主要关注特定组织,如血管、心脏、肺和呼吸道、肝脏、骨骼和肌肉。