Muniz Talita D'Paula Tavares Pereira, Rossi Mariana Correa, de Vasconcelos Machado Vânia Maria, Alves Ana Liz Garcia
Department of Veterinary Surgery and Animal Reproduction, School of Veterinary Medicine and Animal Science, São Paulo State University (UNESP), 18.618-681, Botucatu, Sao Paulo, Brazil.
Materials Engineering Department (DEMa), São Carlos Federal University (UFSCar), 13.565-905, São Carlos, Sao Paulo, Brazil.
Stem Cells Int. 2024 Oct 18;2024:5176251. doi: 10.1155/2024/5176251. eCollection 2024.
The most common technologies in tissue engineering include growth factor therapies; metal implants, such as titanium; 3D bioprinting; nanoimprinting for ceramic/polymer scaffolds; and cell therapies, such as mesenchymal stem cells (MSCs). Cell therapy is a promising alternative to organ grafts and transplants in the treatment of numerous musculoskeletal diseases. MSCs have increasingly been used in generative medicine due to their specialized self-renewal, immunomodulation, multiplication, and differentiation properties. To further expand the potential of these cells in tissue repair, significant efforts are currently dedicated to the production of biomaterials with desirable short- and long-term biophysical properties that can aid the differentiation and expansion of MSCs. Biomaterials support MSC differentiation by modulating their characteristics, such as composition, mechanical properties, porosity, and topography. This review aimed to describe recent MSC approaches, including those associated with biomaterials, from experimental, clinical, and preclinical studies with sheep models.
组织工程中最常见的技术包括生长因子疗法;金属植入物,如钛;3D生物打印;用于陶瓷/聚合物支架的纳米压印;以及细胞疗法,如间充质干细胞(MSC)。在治疗多种肌肉骨骼疾病方面,细胞疗法是器官移植的一种有前景的替代方法。由于其特殊的自我更新、免疫调节、增殖和分化特性,间充质干细胞越来越多地被用于再生医学。为了进一步扩大这些细胞在组织修复中的潜力,目前人们致力于生产具有理想短期和长期生物物理特性的生物材料,以帮助间充质干细胞的分化和扩增。生物材料通过调节其特性,如组成、机械性能、孔隙率和表面形貌,来支持间充质干细胞的分化。本综述旨在描述最近的间充质干细胞方法,包括与生物材料相关的方法,这些方法来自对绵羊模型的实验、临床和临床前研究。