Marino Silvia, Alheijailan Reem, Alonaizan Rita, Gabetti Stefano, Massai Diana, Pesce Maurizio
Discipline of Mechanical, Manufacturing and Biomedical Engineering, Trinity College Dublin, D02 PN40 Dublin, Ireland.
Trinity Centre for Biomedical Engineering, Trinity Biomedical Science Institute, Trinity College Dublin, D02 R590 Dublin, Ireland.
Gels. 2025 Jul 31;11(8):593. doi: 10.3390/gels11080593.
Pathologies of the heart (e.g., ischemic disease, valve fibrosis and calcification, progressive myocardial fibrosis, heart failure, and arrhythmogenic disorders) stem from the irreversible deterioration of cardiac tissues, leading to severe clinical consequences. The limited regenerative capacity of the adult myocardium and the architectural complexity of the heart present major challenges for tissue engineering. However, recent advances in biomaterials and biofabrication techniques have opened new avenues for recreating functional cardiac tissues. Particularly relevant in this context is the integration of biomimetic design principles, such as structural anisotropy, mechanical and electrical responsiveness, and tissue-specific composition, into 3D bioprinting platforms. This review aims to provide a comprehensive overview of current approaches in cardiac bioprinting, with a focus on how structural and functional biomimicry can be achieved using advanced hydrogels, bioprinting techniques, and post-fabrication stimulation. By critically evaluating materials, methods, and applications such as patches, vasculature, valves, and chamber models, we define the state of the art and highlight opportunities for developing next-generation bioengineered cardiac constructs.
心脏疾病(如缺血性疾病、瓣膜纤维化和钙化、进行性心肌纤维化、心力衰竭和致心律失常性疾病)源于心脏组织的不可逆退化,会导致严重的临床后果。成人心肌有限的再生能力以及心脏结构的复杂性给组织工程带来了重大挑战。然而,生物材料和生物制造技术的最新进展为重建功能性心脏组织开辟了新途径。在这种情况下,特别相关的是将仿生设计原则,如结构各向异性、机械和电响应性以及组织特异性组成,整合到3D生物打印平台中。本综述旨在全面概述心脏生物打印的当前方法,重点关注如何使用先进水凝胶、生物打印技术和制造后刺激来实现结构和功能仿生。通过严格评估材料、方法和应用,如贴片、脉管系统、瓣膜和腔室模型,我们界定了当前的技术水平,并突出了开发下一代生物工程心脏构建体的机会。