Cianciosi Alessandro, Simon Jonas, Bartolf-Kopp Michael, Grausgruber Heinrich, Dargaville Tim R, Forget Aurélien, Groll Jürgen, Jungst Tomasz, Beaumont Marco
Department for Functional Materials in Medicine and Dentistry, Institute of Functional Materials and Biofabrication, University of Würzburg, Pleicherwall 2, Würzburg 97070, Germany.
Department of Chemistry, Institute of Chemistry of Renewable Resources, University of Natural Resources and Life Sciences (BOKU), Konrad-Lorenz-Str. 24, A-3430 Tulln, Austria.
Carbohydr Polym. 2023 Nov 1;319:121145. doi: 10.1016/j.carbpol.2023.121145. Epub 2023 Jun 24.
Recreating the intricate mechanical and functional gradients found in natural tissues through additive manufacturing poses significant challenges, including the need for precise control over time and space and the availability of versatile biomaterial inks. In this proof-of-concept study, we developed a new biomaterial ink for direct ink writing, allowing the creation of 3D structures with tailorable functional and mechanical gradients. Our ink formulation combined multifunctional cellulose nanofibrils (CNFs), allyl-functionalized gelatin (0.8-2.0 wt%), and polyethylene glycol dithiol (3.0-7.5 wt%). The CNF served as a rheology modifier, whereas a concentration of 1.8 w/v % in the inks was chosen for optimal printability and shape fidelity. In addition, CNFs were functionalized with azido groups, enabling the spatial distribution of functional moieties within a 3D structure. These functional groups were further modified using a spontaneous click chemistry reaction. Through additive manufacturing and a readily available static mixer, we successfully demonstrated the fabrication of mechanical gradients - ranging from 3 to 6 kPa in indentation strength - and functional gradients. Additionally, we introduced dual gradients by combining gradient printing with an anisotropic photocrosslinking step. The developed biomaterial ink opens up possibilities for printing intricate multigradient structures, resembling the complex hierarchical organization seen in living tissues.
通过增材制造来重现天然组织中复杂的机械和功能梯度面临着重大挑战,包括需要对时间和空间进行精确控制以及需要有多功能生物材料墨水。在这项概念验证研究中,我们开发了一种用于直接墨水书写的新型生物材料墨水,能够创建具有可定制功能和机械梯度的三维结构。我们的墨水配方将多功能纤维素纳米纤维(CNF)、烯丙基功能化明胶(0.8 - 2.0 wt%)和聚乙二醇二硫醇(3.0 - 7.5 wt%)结合在一起。CNF用作流变改性剂,而在墨水中选择1.8 w/v %的浓度以实现最佳的可打印性和形状保真度。此外,CNF用叠氮基进行功能化,从而使功能部分在三维结构内实现空间分布。这些功能基团通过自发的点击化学反应进一步修饰。通过增材制造和一种现成的静态混合器,我们成功展示了机械梯度(压痕强度范围为3至6 kPa)和功能梯度的制造。此外,我们通过将梯度打印与各向异性光交联步骤相结合引入了双重梯度。所开发的生物材料墨水为打印复杂的多梯度结构开辟了可能性,这些结构类似于在活组织中看到的复杂层次组织。