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透明关节软骨的3D生物打印:生物聚合物、水凝胶和生物墨水。

3D Bioprinting of Hyaline Articular Cartilage: Biopolymers, Hydrogels, and Bioinks.

作者信息

Volova Larisa T, Kotelnikov Gennadiy P, Shishkovsky Igor, Volov Dmitriy B, Ossina Natalya, Ryabov Nikolay A, Komyagin Aleksey V, Kim Yeon Ho, Alekseev Denis G

机构信息

Research and Development Institute of Biotechnologies, Samara State Medical University, Chapayevskaya St. 89, 443099 Samara, Russia.

Skolkovo Institute of Science and Technology, Moscow 121205, Russia.

出版信息

Polymers (Basel). 2023 Jun 15;15(12):2695. doi: 10.3390/polym15122695.

Abstract

The musculoskeletal system, consisting of bones and cartilage of various types, muscles, ligaments, and tendons, is the basis of the human body. However, many pathological conditions caused by aging, lifestyle, disease, or trauma can damage its elements and lead to severe disfunction and significant worsening in the quality of life. Due to its structure and function, articular (hyaline) cartilage is the most susceptible to damage. Articular cartilage is a non-vascular tissue with constrained self-regeneration capabilities. Additionally, treatment methods, which have proven efficacy in stopping its degradation and promoting regeneration, still do not exist. Conservative treatment and physical therapy only relieve the symptoms associated with cartilage destruction, and traditional surgical interventions to repair defects or endoprosthetics are not without serious drawbacks. Thus, articular cartilage damage remains an urgent and actual problem requiring the development of new treatment approaches. The emergence of biofabrication technologies, including three-dimensional (3D) bioprinting, at the end of the 20th century, allowed reconstructive interventions to get a second wind. Three-dimensional bioprinting creates volume constraints that mimic the structure and function of natural tissue due to the combinations of biomaterials, living cells, and signal molecules to create. In our case-hyaline cartilage. Several approaches to articular cartilage biofabrication have been developed to date, including the promising technology of 3D bioprinting. This review represents the main achievements of such research direction and describes the technological processes and the necessary biomaterials, cell cultures, and signal molecules. Special attention is given to the basic materials for 3D bioprinting-hydrogels and bioinks, as well as the biopolymers underlying the indicated products.

摘要

肌肉骨骼系统由各种类型的骨骼、软骨、肌肉、韧带和肌腱组成,是人体的基础。然而,许多由衰老、生活方式、疾病或创伤引起的病理状况会损害其组成部分,导致严重功能障碍和生活质量显著恶化。由于其结构和功能,关节(透明)软骨最容易受到损伤。关节软骨是一种自我再生能力受限的无血管组织。此外,目前仍不存在已被证明能有效阻止其退化并促进再生的治疗方法。保守治疗和物理治疗只能缓解与软骨破坏相关的症状,而修复缺损或植入假体的传统手术干预也并非没有严重缺陷。因此,关节软骨损伤仍然是一个迫切且现实的问题,需要开发新的治疗方法。20世纪末生物制造技术的出现,包括三维(3D)生物打印,使重建干预得以重振。三维生物打印通过生物材料、活细胞和信号分子的组合来创建体积限制,从而模拟天然组织的结构和功能。在我们的案例中是透明软骨。迄今为止,已经开发了几种关节软骨生物制造方法,包括有前景的3D生物打印技术。这篇综述介绍了该研究方向的主要成果,并描述了工艺流程以及所需的生物材料、细胞培养物和信号分子。特别关注了用于3D生物打印的基础材料——水凝胶和生物墨水,以及上述产品所基于的生物聚合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0bb9/10301829/f45cdf9f0823/polymers-15-02695-g001.jpg

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