CÚRAM SFI Research Centre for Medical Devices, National University of Ireland Galway, Galway, Ireland.
Group for Advanced Materials and Nanobiotechnology (BIOFORGE Lab), CIBER-BBN, University of Valladolid, Valladolid, Spain.
Sci Transl Med. 2021 Feb 17;13(581). doi: 10.1126/scitranslmed.aaz5380.
Ischemic heart disease is a leading cause of mortality due to irreversible damage to cardiac muscle. Inspired by the post-ischemic microenvironment, we devised an extracellular matrix (ECM)-mimicking hydrogel using catalyst-free click chemistry covalent bonding between two elastin-like recombinamers (ELRs). The resulting customized hydrogel included functional domains for cell adhesion and protease cleavage sites, sensitive to cleavage by matrix metalloproteases overexpressed after myocardial infarction (MI). The scaffold permitted stromal cell invasion and endothelial cell sprouting in vitro. The incidence of non-transmural infarcts has increased clinically over the past decade, and there is currently no treatment preventing further functional deterioration in the infarcted areas. Here, we have developed a clinically relevant ovine model of non-transmural infarcts induced by multiple suture ligations. Intramyocardial injections of the degradable ELRs-hydrogel led to complete functional recovery of ejection fraction 21 days after the intervention. We observed less fibrosis and more angiogenesis in the ELRs-hydrogel-treated ischemic core region compared to the untreated animals, as validated by the expression, proteomic, glycomic, and histological analyses. These findings were accompanied by enhanced preservation of GATA4 cardiomyocytes in the border zone of the infarct. We propose that our customized ECM favors cardiomyocyte preservation in the border zone by modulating the ischemic core and a marked functional recovery. The functional benefits obtained by the timely injection of the ELRs-hydrogel in a clinically relevant MI model support the potential utility of this treatment for further clinical translation.
缺血性心脏病是导致心肌不可逆损伤的主要死亡原因。受缺血后微环境的启发,我们使用无催化剂点击化学通过两个弹性蛋白样重组体(ELR)之间的共价键设计了一种细胞外基质(ECM)模拟水凝胶。所得定制水凝胶包括用于细胞黏附的功能域和蛋白酶切割位点,对心肌梗死后过度表达的基质金属蛋白酶的切割敏感。该支架允许基质细胞侵入和内皮细胞在体外发芽。在过去的十年中,临床上非穿透性梗死的发生率有所增加,目前尚无治疗方法可以防止梗死区域的进一步功能恶化。在这里,我们开发了一种与临床相关的绵羊模型,通过多次缝线结扎诱导非穿透性梗死。在心肌内注射可降解的 ELRs-水凝胶后,在干预后 21 天,射血分数完全恢复。与未治疗的动物相比,在 ELRs-水凝胶治疗的缺血核心区域观察到更少的纤维化和更多的血管生成,这通过表达、蛋白质组学、糖组学和组织学分析得到了验证。这些发现伴随着梗塞边界区 GATA4 心肌细胞的保存增强。我们提出,我们的定制 ECM 通过调节缺血核心和显著的功能恢复,有利于边界区的心肌细胞保存。在临床相关的 MI 模型中,及时注射 ELRs-水凝胶获得的功能益处支持了这种治疗方法进一步临床转化的潜力。