Bernava Giacomo, Iop Laura
Department of Cardiac Thoracic Vascular Sciences and Public Health, Padua Medical School, University of Padua, Padua, Italy.
Front Bioeng Biotechnol. 2023 Sep 22;11:1247572. doi: 10.3389/fbioe.2023.1247572. eCollection 2023.
Due to the limited regenerative ability of cardiomyocytes, the disabling irreversible condition of myocardial failure can only be treated with conservative and temporary therapeutic approaches, not able to repair the damage directly, or with organ transplantation. Among the regenerative strategies, intramyocardial cell injection or intravascular cell infusion should attenuate damage to the myocardium and reduce the risk of heart failure. However, these cell delivery-based therapies suffer from significant drawbacks and have a low success rate. Indeed, cardiac tissue engineering efforts are directed to repair, replace, and regenerate native myocardial tissue function. In a regenerative strategy, biomaterials and biomimetic stimuli play a key role in promoting cell adhesion, proliferation, differentiation, and neo-tissue formation. Thus, appropriate biochemical and biophysical cues should be combined with scaffolds emulating extracellular matrix in order to support cell growth and prompt favorable cardiac microenvironment and tissue regeneration. In this review, we provide an overview of recent developments that occurred in the biomimetic design and fabrication of cardiac scaffolds and patches. Furthermore, we sift and strategies in several preclinical and clinical applications. Finally, we evaluate the possible use of bioengineered cardiac tissue equivalents as models for disease studies and drug tests.
由于心肌细胞的再生能力有限,心肌衰竭这种致残性的不可逆病症只能通过保守的临时治疗方法进行治疗,无法直接修复损伤,或者进行器官移植。在再生策略中,心肌内细胞注射或血管内细胞输注应能减轻对心肌的损伤并降低心力衰竭的风险。然而,这些基于细胞递送的疗法存在重大缺陷且成功率较低。实际上,心脏组织工程致力于修复、替换和再生天然心肌组织功能。在再生策略中,生物材料和仿生刺激在促进细胞黏附、增殖、分化和新组织形成方面起着关键作用。因此,应将适当的生化和生物物理信号与模拟细胞外基质的支架相结合,以支持细胞生长并促进良好的心脏微环境和组织再生。在本综述中,我们概述了心脏支架和贴片的仿生设计与制造方面的最新进展。此外,我们筛选了几种临床前和临床应用中的策略。最后,我们评估了生物工程心脏组织等效物作为疾病研究和药物测试模型的可能用途。