Department of Materials Science and Engineering, Institute of Biomaterials, University of Erlangen-Nuremberg, 91058, Erlangen, Germany.
The Guy Hilton Research Laboratories, School of Pharmacy and Bioengineering, Faculty of Medicine and Health Sciences, Keele University, Stoke on Trent, ST4 7QB, UK.
Adv Healthc Mater. 2023 Aug;12(21):e2203205. doi: 10.1002/adhm.202203205. Epub 2023 May 1.
Aligned pore structures present many advantages when conceiving biomaterial strategies for treatment of musculoskeletal disorders. Aligned ice templating (AIT) is one of the many different techniques capable of producing anisotropic porous scaffolds; its high versatility allows for the formation of structures with tunable pore sizes, as well as the use of many different materials. AIT has been found to yield improved compressive properties for bone tissue engineering (BTE), as well as higher tensile strength and optimized cellular alignment and proliferation in tendon and muscle repair applications. This review evaluates the work that has been done in the last decade toward the production of aligned pore structures by AIT with an outlook on the musculoskeletal system. This work describes the fundamentals of the AIT technique and focuses on the research carried out to optimize the biomechanical properties of scaffolds by modifying the pore structure, categorizing by material type and application. Related topics including growth factor incorporation into AIT scaffolds, drug delivery applications, and studies about immune system response will be discussed.
当设计用于治疗肌肉骨骼疾病的生物材料策略时,排列的孔结构具有许多优势。排列的冰模板(AIT)是能够产生各向异性多孔支架的众多不同技术之一;其高度的通用性允许形成具有可调孔径的结构,以及使用许多不同的材料。AIT 已被发现可提高骨组织工程(BTE)的抗压性能,以及提高肌腱和肌肉修复应用中的拉伸强度和优化的细胞排列和增殖。本综述评估了过去十年中通过 AIT 生产排列孔结构的工作,展望了肌肉骨骼系统。这项工作描述了 AIT 技术的基础,并侧重于通过改变孔结构来优化支架生物力学性能的研究,按材料类型和应用进行分类。将讨论相关主题,包括将生长因子纳入 AIT 支架、药物输送应用以及关于免疫系统反应的研究。