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海藻酸盐-明胶水凝胶支架:用于增强降解和溶胀行为的后打印处理优化

Alginate-Gelatin Hydrogel Scaffolds; An Optimization of Post-Printing Treatment for Enhanced Degradation and Swelling Behavior.

作者信息

Kaliampakou Christina, Lagopati Nefeli, Pavlatou Evangelia A, Charitidis Costas A

机构信息

RNanoLab, Research Unit of Advanced, Composite, Nano Materials & Nanotechnology, School of Chemical Engineering, Zografos Campus, National Technical University of Athens, 9 Heroon, Polytechniou St., 15780 Athens, Greece.

Laboratory of Biology, Department of Basic Medical Sciences, Medical School, National and Kapodistrian University of Athens, 11527 Athens, Greece.

出版信息

Gels. 2023 Oct 28;9(11):857. doi: 10.3390/gels9110857.

Abstract

The generation of 3D structures comprises three interlinked phases: material development, the printing process, and post-printing treatment. Numerous factors control all three phases, making the optimization of the entire process a challenging task. Until now, the state of the art has mainly focused on optimizing material processability and calibration of the printing process. However, after the successful Direct Ink Writing (DIW) of a hydrogel scaffold, the post-printing stage holds equal importance, as this allows for the treatment of the structure to ensure the preservation of its structural integrity for a duration that is sufficient to enable successful cell attachment and proliferation before undergoing degradation. Despite this stage's pivotal role, there is a lack of extensive literature covering its optimization. By studying the crosslinking factors and leveling the post-treatment settings of alginate-gelatin hydrogel, this study proposes a method to enhance scaffolds' degradation without compromising the targeted swelling behavior. It introduces an experimental design implementing the Response Surface Methodology (RSM) Design of Experiments (DoE), which elucidated the key parameters influencing scaffold degradation and swelling, and established an alginate ratio of 8% and being immersed for 15 min in 0.248 M CaCl as the optimal level configuration that generates a solution of 0.964 desirability, reaching a degradation time of 19.654 days and the swelling ratio of 50.00%.

摘要

3D结构的生成包括三个相互关联的阶段:材料开发、打印过程和打印后处理。众多因素控制着这三个阶段,使得整个过程的优化成为一项具有挑战性的任务。到目前为止,现有技术主要集中在优化材料的加工性能和打印过程的校准上。然而,在水凝胶支架成功进行直接墨水书写(DIW)之后,打印后阶段同样重要,因为这可以对结构进行处理,以确保其结构完整性在足够长的时间内得以保留,以便在降解之前成功实现细胞附着和增殖。尽管这个阶段起着关键作用,但缺乏关于其优化的广泛文献。通过研究交联因素并调整藻酸盐 - 明胶水凝胶的后处理设置,本研究提出了一种在不影响目标溶胀行为的情况下增强支架降解的方法。它引入了一种实施响应面方法(RSM)实验设计(DoE)的实验设计,该设计阐明了影响支架降解和溶胀的关键参数,并确定8%的藻酸盐比例以及在0.248 M氯化钙中浸泡15分钟作为最优水平配置,该配置产生的合意度为0.964,降解时间为19.654天,溶胀率为50.00%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4290/10671076/90813610bdf6/gels-09-00857-g001.jpg

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