Ketabat Farinaz, Maris Titouan, Duan Xiaoman, Yazdanpanah Zahra, Kelly Michael E, Badea Ildiko, Chen Xiongbiao
Division of Biomedical Engineering, University of Saskatchewan, Saskatoon, SK, Canada.
Institut Catholique des arts et métiers (ICAM)- Site de Toulouse, Toulouse, France.
Front Bioeng Biotechnol. 2023 May 25;11:1161804. doi: 10.3389/fbioe.2023.1161804. eCollection 2023.
Engineering cardiac tissue that mimics the hierarchical structure of cardiac tissue remains challenging, raising the need for developing novel methods capable of creating structures with high complexity. Three-dimensional (3D)-printing techniques are among promising methods for engineering complex tissue constructs with high precision. By means of 3D printing, this study aims to develop cardiac constructs with a novel angular structure mimicking cardiac architecture from alginate (Alg) and gelatin (Gel) composite. The 3D-printing conditions were optimized and the structures were characterized , with human umbilical vein endothelial cells (HUVECs) and cardiomyocytes (H9c2 cells), for potential cardiac tissue engineering. We synthesized the composites of Alg and Gel with varying concentrations and examined their cytotoxicity with both H9c2 cells and HUVECs, as well as their printability for creating 3D structures of varying fibre orientations (angular design). The 3D-printed structures were characterized in terms of morphology by both scanning electron microscopy (SEM) and synchrotron radiation propagation-based imaging computed tomography (SR-PBI-CT), and elastic modulus, swelling percentage, and mass loss percentage as well. The cell viability studies were conducted via measuring the metabolic activity of the live cells with MTT assay and visualizing the cells with live/dead assay kit. Among the examined composite groups of Alg and Gel, two combinations with ratios of 2 to 1 and 3 to 1 (termed as Alg2Gel1 and Alg3Gel1) showed the highest cell survival; they accordingly were used to fabricate two different structures: a novel angular and a conventional lattice structure. Scaffolds made of Alg3Gel1 showed higher elastic modulus, lower swelling percentage, less mass loss, and higher cell survival compared to that of Alg2Gel1. Although the viability of H9c2 cells and HUVECs on all scaffolds composed of Alg3Gel1 was above 99%, the group of the constructs with the angular design maintained significantly more viable cells compared to other investigated groups. The group of angular 3D-ptinted constructs has illustrated promising properties for cardiac tissue engineering by providing high cell viability for both endothelial and cardiac cells, high mechanical strength as well as appropriate swelling, and degradation properties during 21 days of incubation. 3D-printing is an emerging method to create complex constructs with high precision in a large scale. In this study, we have demonstrated that 3D-printing can be used to create compatible constructs from the composite of Alg and Gel with endothelial cells and cardiac cells. Also, we have demonstrated that these constructs are able to enhance the viability of cardiac and endothelial cells via creating a 3D structure mimicking the alignment and orientation of the fibers in the native heart.
构建模仿心脏组织层次结构的心脏组织仍然具有挑战性,这就需要开发能够创建高复杂性结构的新方法。三维(3D)打印技术是有望高精度构建复杂组织的方法之一。本研究旨在通过3D打印,利用藻酸盐(Alg)和明胶(Gel)复合材料开发具有模仿心脏结构的新型角状结构的心脏构建体。优化了3D打印条件,并对结构进行了表征,将人脐静脉内皮细胞(HUVECs)和心肌细胞(H9c2细胞)用于潜在的心脏组织工程。我们合成了不同浓度的Alg和Gel复合材料,并检测了它们对H9c2细胞和HUVECs的细胞毒性,以及创建不同纤维取向(角状设计)的3D结构的可打印性。通过扫描电子显微镜(SEM)和基于同步辐射传播的成像计算机断层扫描(SR-PBI-CT)对3D打印结构的形态进行了表征,还测定了弹性模量、溶胀率和质量损失率。通过MTT法测量活细胞的代谢活性并用活/死检测试剂盒对细胞进行可视化,进行细胞活力研究。在所检测的Alg和Gel复合组中,两种比例为2比1和3比1的组合(称为Alg2Gel1和Alg3Gel1)显示出最高的细胞存活率;因此,它们被用于制造两种不同的结构:一种新型角状结构和一种传统格子结构。与Alg2Gel1相比,由Alg3Gel1制成的支架显示出更高的弹性模量、更低的溶胀率、更少的质量损失和更高的细胞存活率。尽管在所有由Alg3Gel1组成的支架上H9c2细胞和HUVECs的活力都在99%以上,但角状设计的构建体组与其他研究组相比,维持了明显更多的活细胞。角状3D打印构建体组通过在21天的培养过程中为内皮细胞和心肌细胞提供高细胞活力、高机械强度以及适当的溶胀和降解特性,展示了在心脏组织工程方面的良好性能。3D打印是一种大规模创建高精度复杂构建体的新兴方法。在本研究中,我们证明了3D打印可用于由Alg和Gel复合材料与内皮细胞和心肌细胞创建相容性构建体。此外,我们还证明了这些构建体能够通过创建模仿天然心脏中纤维排列和取向的3D结构来提高心肌细胞和内皮细胞的活力。