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碳纳米管嵌入水凝胶片用于构建工程心脏和生物执行器。

Carbon-nanotube-embedded hydrogel sheets for engineering cardiac constructs and bioactuators.

机构信息

Center for Biomedical Engineering, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, 65 Landsdowne Street, Cambridge, Massachusetts 02139, United States.

出版信息

ACS Nano. 2013 Mar 26;7(3):2369-80. doi: 10.1021/nn305559j. Epub 2013 Feb 22.

Abstract

We engineered functional cardiac patches by seeding neonatal rat cardiomyocytes onto carbon nanotube (CNT)-incorporated photo-cross-linkable gelatin methacrylate (GelMA) hydrogels. The resulting cardiac constructs showed excellent mechanical integrity and advanced electrophysiological functions. Specifically, myocardial tissues cultured on 50 μm thick CNT-GelMA showed 3 times higher spontaneous synchronous beating rates and 85% lower excitation threshold, compared to those cultured on pristine GelMA hydrogels. Our results indicate that the electrically conductive and nanofibrous networks formed by CNTs within a porous gelatin framework are the key characteristics of CNT-GelMA leading to improved cardiac cell adhesion, organization, and cell-cell coupling. Centimeter-scale patches were released from glass substrates to form 3D biohybrid actuators, which showed controllable linear cyclic contraction/extension, pumping, and swimming actuations. In addition, we demonstrate for the first time that cardiac tissues cultured on CNT-GelMA resist damage by a model cardiac inhibitor as well as a cytotoxic compound. Therefore, incorporation of CNTs into gelatin, and potentially other biomaterials, could be useful in creating multifunctional cardiac scaffolds for both therapeutic purposes and in vitro studies. These hybrid materials could also be used for neuron and other muscle cells to create tissue constructs with improved organization, electroactivity, and mechanical integrity.

摘要

我们通过将新生大鼠心肌细胞接种到含有碳纳米管(CNT)的可光交联明胶甲基丙烯酸酯(GelMA)水凝胶上来构建功能性心脏贴片。所得心脏构建体表现出优异的机械完整性和先进的电生理功能。具体而言,与在原始 GelMA 水凝胶上培养的心肌组织相比,在 50μm 厚的 CNT-GelMA 上培养的心肌组织显示出 3 倍更高的自发同步跳动率和 85%更低的激发阈值。我们的结果表明,在多孔明胶框架内形成的 CNT 的导电和纳米纤维网络是 CNT-GelMA 的关键特性,可促进心脏细胞的黏附、组织和细胞-细胞偶联。从玻璃基底上释放厘米级大小的贴片以形成 3D 生物混合致动器,该致动器可进行可控的线性循环收缩/扩张、泵送和游泳致动。此外,我们首次证明,在 CNT-GelMA 上培养的心脏组织能够抵抗模型心脏抑制剂和细胞毒性化合物的损伤。因此,将 CNT 掺入明胶中,以及潜在地掺入其他生物材料中,可能有助于为治疗目的和体外研究创建多功能心脏支架。这些混合材料还可用于神经元和其他肌肉细胞,以创建具有改善的组织、电活性和机械完整性的组织构建体。

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