诱导多能干细胞
转录组
糖酵解
代谢通量分析
细胞培养
细胞生物学
生物
焊剂(冶金)
氧化磷酸化
代谢途径
生物化学
基因
化学
基因表达
新陈代谢
胚胎干细胞
遗传学
有机化学
作者
Cláudia Correia,Alexey Koshkin,Patrícia Duarte,Dongjian Hu,Madalena Carido,Maria João Sebastião,Patrícia Gomes‐Alves,David A. Elliott,Ibrahim J. Domian,Ana P. Teixeira,Paula M. Alves,Margarida Serra
摘要
Abstract Three‐dimensional (3D) cultures of human pluripotent stem cell derived cardiomyocytes (hPSC‐CMs) hold great promise for drug discovery, providing a better approximation to the in vivo physiology over standard two‐dimensional (2D) monolayer cultures. However, the transition of CM differentiation protocols from 2D to 3D cultures is not straightforward. In this work, we relied on the aggregation of hPSC‐derived cardiac progenitors and their culture under agitated conditions to generate highly pure cardiomyocyte aggregates. Whole‐transcriptome analysis and 13 C‐metabolic flux analysis allowed to demonstrate at both molecular and fluxome levels that such 3D culture environment enhances metabolic maturation of hiPSC‐CMs. When compared to 2D, 3D cultures of hiPSC‐CMs displayed down‐regulation of genes involved in glycolysis and lipid biosynthesis and increased expression of genes involved in OXPHOS. Accordingly, 3D cultures of hiPSC‐CMs had lower fluxes through glycolysis and fatty acid synthesis and increased TCA‐cycle activity. Importantly, we demonstrated that the 3D culture environment reproducibly improved both CM purity and metabolic maturation across different hPSC lines, thereby providing a robust strategy to derive enriched hPSC‐CMs with metabolic features closer to that of adult CMs.
科研通智能强力驱动
Strongly Powered by AbleSci AI