Department of Plastic Surgery, Peking University Third Hospital, Beijing, China.
Key Laboratory of Structure-Based Drug Design & Discovery of Ministry of Education, College of Traditional Chinese Materia Medica, Shenyang Pharmaceutical University, Shenyang, China.
Cell Prolif. 2023 Apr;56(4):e13417. doi: 10.1111/cpr.13417. Epub 2023 Feb 12.
Nasal deformities due to various causes affect the aesthetics and use of the nose, in which case rhinoplasty is necessary. However, the lack of cartilage for grafting has been a major problem and tissue engineering seems to be a promising solution. 3D bioprinting has become one of the most advanced tissue engineering methods. To construct ideal cartilage, bio-ink, seed cells, growth factors and other methods to promote chondrogenesis should be considered and weighed carefully. With continuous progress in the field, bio-ink choices are becoming increasingly abundant, from a single hydrogel to a combination of hydrogels with various characteristics, and more 3D bioprinting methods are also emerging. Adipose-derived stem cells (ADSCs) have become one of the most popular seed cells in cartilage 3D bioprinting, owing to their abundance, excellent proliferative potential, minimal morbidity during harvest and lack of ethical considerations limitations. In addition, the co-culture of ADSCs and chondrocytes is commonly used to achieve better chondrogenesis. To promote chondrogenic differentiation of ADSCs and construct ideal highly bionic tissue-engineered cartilage, researchers have used a variety of methods, including adding appropriate growth factors, applying biomechanical stimuli and reducing oxygen tension. According to the process and sequence of cartilage 3D bioprinting, this review summarizes and discusses the selection of hydrogel and seed cells (centered on ADSCs), the design of printing, and methods for inducing the chondrogenesis of ADSCs.
由于各种原因导致的鼻畸形会影响鼻子的美观和功能,此时需要进行鼻整形术。然而,由于缺乏可用于移植的软骨,这一直是一个主要问题,而组织工程似乎是一个有前途的解决方案。3D 生物打印已成为最先进的组织工程方法之一。为了构建理想的软骨,应该仔细考虑和权衡生物墨水、种子细胞、生长因子等促进软骨生成的方法。随着该领域的不断进步,生物墨水的选择变得越来越丰富,从单一的水凝胶到具有各种特性的水凝胶组合,更多的 3D 生物打印方法也在不断涌现。脂肪来源的干细胞(ADSCs)由于其丰富、良好的增殖潜力、在采集过程中产生的轻微发病率以及不存在伦理问题的限制,已成为软骨 3D 生物打印中最受欢迎的种子细胞之一。此外,ADSCs 与软骨细胞的共培养常用于实现更好的软骨生成。为了促进 ADSCs 的软骨分化并构建理想的高度仿生组织工程软骨,研究人员已经使用了多种方法,包括添加适当的生长因子、应用生物力学刺激和降低氧张力。根据软骨 3D 生物打印的过程和顺序,本文综述并讨论了水凝胶和种子细胞(以 ADSCs 为中心)的选择、打印设计以及诱导 ADSCs 软骨生成的方法。