Feiner Ron, Engel Leeya, Fleischer Sharon, Malki Maayan, Gal Idan, Shapira Assaf, Shacham-Diamand Yosi, Dvir Tal
The Laboratory for Tissue Engineering and Regenerative Medicine, Department of Molecular Microbiology and Biotechnology, George S. Wise Faculty of Life Science, Tel Aviv University, Tel Aviv 69978, Israel.
The Center for Nanoscience and Nanotechnology, Tel Aviv University, Tel Aviv 69978, Israel.
Nat Mater. 2016 Jun;15(6):679-85. doi: 10.1038/nmat4590. Epub 2016 Mar 14.
In cardiac tissue engineering approaches to treat myocardial infarction, cardiac cells are seeded within three-dimensional porous scaffolds to create functional cardiac patches. However, current cardiac patches do not allow for online monitoring and reporting of engineered-tissue performance, and do not interfere to deliver signals for patch activation or to enable its integration with the host. Here, we report an engineered cardiac patch that integrates cardiac cells with flexible, freestanding electronics and a 3D nanocomposite scaffold. The patch exhibited robust electronic properties, enabling the recording of cellular electrical activities and the on-demand provision of electrical stimulation for synchronizing cell contraction. We also show that electroactive polymers containing biological factors can be deposited on designated electrodes to release drugs in the patch microenvironment on demand. We expect that the integration of complex electronics within cardiac patches will eventually provide therapeutic control and regulation of cardiac function.
在治疗心肌梗死的心脏组织工程方法中,将心脏细胞接种在三维多孔支架内以创建功能性心脏补片。然而,目前的心脏补片无法对工程组织的性能进行在线监测和报告,也无法干扰传递用于补片激活的信号或使其与宿主整合。在此,我们报告一种工程化心脏补片,它将心脏细胞与柔性、独立的电子器件以及三维纳米复合支架整合在一起。该补片展现出强大的电子特性,能够记录细胞电活动并按需提供电刺激以使细胞收缩同步。我们还表明,含有生物因子的电活性聚合物可沉积在指定电极上,以便在补片微环境中按需释放药物。我们期望心脏补片内复杂电子器件的整合最终能实现对心脏功能的治疗控制和调节。