Hwang Boeun, Korsnick Lauren, Shen Ming, Jin Linqi, Singh Yamini, Abdalla Mostafa, Bauser-Heaton Holly, Serpooshan Vahid
Wallace H. Coulter Department of Biomedical Engineering, Emory University School of Medicine and Georgia Institute of Technology, Atlanta, GA, USA.
Department of Pediatrics, Emory University School of Medicine, Atlanta, GA, USA.
iScience. 2024 Aug 22;27(10):110770. doi: 10.1016/j.isci.2024.110770. eCollection 2024 Oct 18.
Cardiac patch strategies are developed as a promising approach to regenerate the injured heart after myocardial infarction (MI). This study integrated 3D bioprinting and cardioprotective paracrine signaling to fabricate vascular patch devices containing endothelial cells (ECs) and the regenerative follistatin-like 1 (FSTL1) peptide. Engineered patch supported the 3D culture of ECs in both static and dynamic culture, forming a uniform endothelium on the printed channels. Implantation of vascular patch onto a rat model of acute MI resulted in significant reduction of scar formation, left ventricle dilation, and wall thinning, as well as enhanced ejection fraction. Furthermore, increased vascularization and proliferation of cardiomyocytes were observed in hearts treated with patches. These findings highlight the remarkable capacity of 3D bioprinted vascular patch to augment the endogenous regenerative capacity of mammalian heart, together with the exogenous cardioprotective function, to serve as a robust therapeutic device to treat acute MI.
心脏贴片策略被开发为一种有前景的方法,用于在心肌梗死(MI)后使受损心脏再生。本研究整合了3D生物打印和心脏保护旁分泌信号,以制造包含内皮细胞(ECs)和再生卵泡抑素样1(FSTL1)肽的血管贴片装置。工程化贴片支持ECs在静态和动态培养中的3D培养,在打印通道上形成均匀的内皮。将血管贴片植入急性心肌梗死大鼠模型可显著减少瘢痕形成、左心室扩张和壁变薄,同时提高射血分数。此外,在用贴片治疗的心脏中观察到血管生成增加和心肌细胞增殖。这些发现突出了3D生物打印血管贴片增强哺乳动物心脏内源性再生能力以及外源性心脏保护功能的显著能力,可作为治疗急性心肌梗死的强大治疗装置。