Nieto Daniel, Marchal Corrales Juan Antonio, Jorge de Mora Alberto, Moroni Lorenzo
SERGAS (Galician Health Service) and IDIS (Health Research Institute of Santiago de Compostela (IDIS), Orthopaedic Department, Universidad de Santiago de Compostela, Santiago de Compostela 15782, Spain.
Complex Tissue Regeneration Department, MERLN Institute for Technology Inspired Regenerative Medicine, Universiteitssingel 40, 6229ER Maastricht, The Netherlands.
APL Bioeng. 2020 Oct 12;4(4):041502. doi: 10.1063/5.0022693. eCollection 2020 Dec.
Biofabrication technologies that use light for polymerization of biomaterials have made significant progress in the quality, resolution, and generation of precise complex tissue structures. In recent years, the evolution of these technologies has been growing along with the development of new photocurable resins and photoinitiators that are biocompatible and biodegradable with bioactive properties. Such evolution has allowed the progress of a large number of tissue engineering applications. Flexibility in the design, scale, and resolution and wide applicability of technologies are strongly dependent on the understanding of the biophysics involved in the biofabrication process. In particular, understanding cell-light interactions is crucial when bioprinting using cell-laden biomaterials. Here, we summarize some theoretical mechanisms, which condition cell response during bioprinting using light based technologies. We take a brief look at the light-biomaterial interaction for a better understanding of how linear effects (refraction, reflection, absorption, emission, and scattering) and nonlinear effects (two-photon absorption) influence the biofabricated tissue structures and identify the different parameters essential for maintaining cell viability during and after bioprinting.
利用光聚合生物材料的生物制造技术在生物材料的质量、分辨率以及精确复杂组织结构的生成方面取得了重大进展。近年来,随着具有生物相容性、可生物降解且具备生物活性的新型光固化树脂和光引发剂的发展,这些技术也在不断演进。这种演进推动了大量组织工程应用的进步。技术在设计、规模和分辨率方面的灵活性以及广泛适用性,很大程度上依赖于对生物制造过程中所涉及生物物理学的理解。特别是在使用负载细胞的生物材料进行生物打印时,理解细胞与光的相互作用至关重要。在此,我们总结了一些理论机制,这些机制决定了在使用基于光的技术进行生物打印过程中的细胞反应。我们简要探讨光与生物材料的相互作用,以便更好地理解线性效应(折射、反射、吸收、发射和散射)和非线性效应(双光子吸收)如何影响生物制造的组织结构,并确定在生物打印期间及之后维持细胞活力所必需的不同参数。