Department of Translational Research, Western University of Health Sciences, Pomona, CA 91766, USA.
Biochem Cell Biol. 2023 Feb 1;101(1):12-51. doi: 10.1139/bcb-2022-0229. Epub 2022 Nov 3.
Myocardial regenerative strategies are promising where the choice of ideal cell population is crucial for successful translational applications. Herein, we explored the regenerative/repair responses of infarct zone cardiac fibroblast(s) (CF) by unveiling their phenotype heterogeneity at single-cell resolution. CF were isolated from the infarct zone of Yucatan miniswine that suffered myocardial infarction, cultured under simulated ischemic and reperfusion, and grouped into control, ischemia, and ischemia/reperfusion. The single-cell RNA sequencing analysis revealed 19 unique cell clusters suggesting distinct subpopulations. The status of gene expression (log2 fold change (log2 FC) > 2 and log2 FC < -2) was used to define the characteristics of each cluster unveiling with diverse features, including the pro-survival/cardioprotective (Clusters 1, 3, 5, 9, and 18), vasculoprotective (Clusters 2 and 5), anti-inflammatory (Clusters 4 and 17), proliferative (Clusters 4 and 5), nonproliferative (Clusters 6, 8, 11, 16, 17, and 18), proinflammatory (Cluster 6), profibrotic/pathologic (Clusters 8 and 19), antihypertrophic (Clusters 8 and 10), extracellular matrix restorative (Clusters 9 and 12), angiogenic (Cluster 16), and normal (Clusters 7 and 15) phenotypes. Further understanding of these unique phenotypes of CF will provide significant translational opportunities for myocardial regeneration and cardiac management.
心肌再生策略具有广阔的前景,而选择理想的细胞群体对于成功的转化应用至关重要。在这里,我们通过揭示梗死区心脏成纤维细胞(CF)的表型异质性,探索了其在单细胞分辨率下的再生/修复反应。CF 是从患有心肌梗死的尤卡坦小型猪的梗死区分离出来的,在模拟缺血和再灌注的条件下进行培养,并分为对照组、缺血组和缺血/再灌注组。单细胞 RNA 测序分析揭示了 19 个独特的细胞簇,表明存在不同的亚群。基因表达的状态(log2 倍数变化(log2 FC)>2 和 log2 FC <-2)用于定义每个簇的特征,揭示了具有不同特征的簇,包括促生存/心脏保护(簇 1、3、5、9 和 18)、血管保护(簇 2 和 5)、抗炎(簇 4 和 17)、增殖(簇 4 和 5)、非增殖(簇 6、8、11、16、17 和 18)、促炎(簇 6)、促纤维化/病理性(簇 8 和 19)、抗肥大(簇 8 和 10)、细胞外基质修复(簇 9 和 12)、血管生成(簇 16)和正常(簇 7 和 15)表型。进一步了解 CF 的这些独特表型将为心肌再生和心脏管理提供重要的转化机会。