Biomaterials for Regenerative Therapies, Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute of Science and Technology (BIST), Baldiri i Reixac 10-12, 08028 Barcelona, Spain.
CIBER en Bioingeniería, Biomateriales y Nanomedicina (CIBER-BBN), 28029 Madrid, Spain.
Biofabrication. 2021 Jun 1;13(3). doi: 10.1088/1758-5090/abff12.
The creation of cardiac tissue models for preclinical testing is still a non-solved problem in drug discovery, due to the limitations related to thereplication of cardiac tissue complexity. Among these limitations, the difficulty of mimicking the functional properties of the myocardium due to the immaturity of the used cells hampers the obtention of reliable results that could be translated into human patients.models are the current gold standard to test new treatments, although it is widely acknowledged that the used animals are unable to fully recapitulate human physiology, which often leads to failures during clinical trials. In the present work, we present a microfluidic platform that aims to provide a range of signaling cues to immature cardiac cells to drive them towards an adult phenotype. The device combines topographical electrospun nanofibers with electrical stimulation in a microfabricated system. We validated our platform using a co-culture of neonatal mouse cardiomyocytes and cardiac fibroblasts, showing that it allows us to control the degree of anisotropy of the cardiac tissue inside the microdevice in a cost-effective way. Moreover, a 3D computational model of the electrical field was created and validated to demonstrate that our platform is able to closely match the distribution obtained with the gold standard (planar electrode technology) using inexpensive rod-shaped biocompatible stainless-steel electrodes. The functionality of the electrical stimulation was shown to induce a higher expression of the tight junction protein Cx-43, as well as the upregulation of several key genes involved in conductive and structural cardiac properties. These results validate our platform as a powerful tool for the tissue engineering community due to its low cost, high imaging compatibility, versatility, and high-throughput configuration capabilities.
用于临床前测试的心脏组织模型的创建仍然是药物发现中的一个未解决的问题,这是由于心脏组织复杂性的复制受到限制。在这些限制中,由于所使用细胞的不成熟,模拟心肌的功能特性的难度阻碍了获得可转化为人类患者的可靠结果。 尽管广泛认为使用的动物无法完全重现人类生理学,但模型仍然是测试新治疗方法的当前黄金标准,这常常导致临床试验中的失败。在本工作中,我们提出了一种微流控平台,旨在为未成熟的心脏细胞提供一系列信号提示,以促使它们向成人心肌细胞表型发展。该装置将具有拓扑结构的电纺纳米纤维与微加工系统中的电刺激相结合。我们使用新生小鼠心肌细胞和心脏成纤维细胞的共培养物验证了我们的平台,表明它允许我们以具有成本效益的方式控制微器件内心脏组织的各向异性程度。此外,还创建并验证了一个用于电场的 3D 计算模型,以证明我们的平台能够使用廉价的杆状生物相容性不锈钢电极,紧密匹配使用金标准(平面电极技术)获得的分布。电刺激的功能表明它可以诱导紧密连接蛋白 Cx-43 的更高表达,以及涉及传导和结构心脏特性的几个关键基因的上调。这些结果验证了我们的平台作为组织工程界的有力工具,因为它具有低成本、高成像兼容性、多功能性和高通量配置能力。