Sánchez-Sánchez Raúl, Rodríguez-Rego Jesús M, Macías-García Antonio, Mendoza-Cerezo Laura, Díaz-Parralejo Antonio
Departamento de Ingeniería Mecánica, Energética y de los Materiales, Escuela de Ingenierías Industriales, Universidad de Extremadura, Avenida de Elvas, s/n. 06006-Badajoz. Spain.
Departamento de Expresión Gráfica, Escuela de Ingenierías Industriales, Universidad de Extremadura, Avenida de Elvas, s/n. 06006-Badajoz, Spain.
Int J Bioprint. 2023 Feb 16;9(2):687. doi: 10.18063/ijb.687. eCollection 2023.
Three-dimensional bioprinting is a technology in constant development, mainly due to its extraordinary potential to revolutionize regenerative medicine. It allows fabrication through the additive deposition of biochemical products, biological materials, and living cells for the generation of structures in bioengineering. There are various techniques and biomaterials or bioinks that are suitable for bioprinting. Their rheological properties are directly related to the quality of these processes. In this study, alginate-based hydrogels were prepared using CaCl as ionic crosslinking agent. Their rheological behavior was studied, and simulations of the bioprinting processes under predetermined conditions were carried out, looking for possible relationships between the rheological parameters and the variables used in the bioprinting processes. A clear linear relationship was found between the extrusion pressure and the flow consistency index rheological parameter, , and between the extrusion time and the flow behavior index rheological parameter, . This would allow simplification of the repetitive processes currently applied to optimize the extrusion pressure and dispensing head displacement speed, thereby helping to reduce the time and material used as well as to optimize the required bioprinting results.
三维生物打印是一项不断发展的技术,主要因其具有变革再生医学的巨大潜力。它通过生化产品、生物材料和活细胞的添加沉积来制造生物工程结构。有多种技术以及生物材料或生物墨水适用于生物打印。它们的流变特性与这些过程的质量直接相关。在本研究中,使用氯化钙作为离子交联剂制备了基于藻酸盐的水凝胶。研究了它们的流变行为,并在预定条件下对生物打印过程进行了模拟,以寻找流变参数与生物打印过程中使用的变量之间的可能关系。在挤出压力与流变参数流动一致性指数之间,以及挤出时间与流变参数流动行为指数之间发现了明显的线性关系。这将有助于简化目前用于优化挤出压力和喷头位移速度的重复过程,从而有助于减少时间和材料的使用,并优化所需的生物打印结果。