Institute for Chemistry and Technology of Biobased System (IBioSys), Graz University of Technology, Stremayrgasse 9, 8010, Graz, Austria.
COREMED - Centre of Regenerative and Precision Medicine, JOANNEUM RESEARCH Forschungsgesellschaft mbH, Neue Stiftingtalstraße 2, 8010, Graz, Austria.
Adv Healthc Mater. 2024 Jan;13(2):e2302348. doi: 10.1002/adhm.202302348. Epub 2023 Oct 26.
Many of the peculiar properties of the vasculature are related to the arrangement of anisotropic proteinaceous fibers in vessel walls. Understanding and imitating these arrangements can potentially lead to new therapies for cardiovascular diseases. These can be pre-surgical planning, for which patient-specific ex vivo anatomical models for endograft testing are of interest. Alternatively, therapies can be based on tissue engineering, for which degradable in vitro cell growth substrates are used to culture replacement parts. In both cases, materials are desirable that imitate the biophysical properties of vessels, including their tubular shapes and compliance. This work contributes to these demands by offering methods for the manufacturing of anisotropic 3D-printed nanofibrous tubular structures that have similar biophysical properties as porcine aortae, that are biocompatible, and that allow for controlled nutrient diffusion. Tubes of various sizes with axial, radial, or alternating nanofiber orientation along the blood flow direction are manufactured by a customized method. Blood pressure-resistant, compliant, stable, and cell culture-compatible structures are obtained, that can be degraded in vitro on demand. It is suggested that these healthcare materials can contribute to the next generation of cardiovascular therapies of ex vivo pre-surgical planning or in vitro cell culture.
血管的许多特殊性质都与血管壁中各向异性蛋白纤维的排列有关。了解和模仿这些排列结构可能会为心血管疾病的新疗法带来新的可能。这些疗法可以是基于术前规划的,对于这种情况,人们对用于血管内移植物测试的患者特定的离体解剖模型感兴趣。或者,这些疗法可以基于组织工程,为此,人们使用可降解的体外细胞生长基质来培养替代物。在这两种情况下,人们都希望使用的材料能够模仿血管的生物物理特性,包括其管状形状和顺应性。本工作通过提供制造各向异性 3D 打印纳米纤维管状结构的方法来满足这些需求,这些结构具有与猪主动脉相似的生物物理特性、生物相容性,并且允许控制营养物质的扩散。通过定制方法制造具有沿血流方向的各向异性纳米纤维的不同尺寸的管,获得具有抗血压、顺应性、稳定性和细胞培养相容性的结构,这些结构可以根据需要在体外降解。人们认为这些医疗保健材料可以为下一代心血管疗法,即离体术前规划或体外细胞培养,做出贡献。