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去细胞细胞外基质粉末加速人诱导多能干细胞来源心肌细胞分化早期的代谢成熟。

Decellularized Extracellular Matrix Powder Accelerates Metabolic Maturation at Early Stages of Cardiac Differentiation in Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes.

机构信息

Texas Heart Institute, Houston, Texas, USA.

Institute of Chemistry, Federal University of Rio de Janeiro, Rio de Janeiro, Brazil.

出版信息

Cells Tissues Organs. 2023;212(1):32-44. doi: 10.1159/000521580. Epub 2021 Dec 21.

Abstract

During fetal development, cardiomyocytes switch from glycolysis to oxidative metabolism to sustain the energy requirements of functional cells. State-of-the-art cardiac differentiation protocols yield phenotypically immature cardiomyocytes, and common methods to improve metabolic maturation require multistep protocols to induce maturation only after cardiac specification is completed. Here, we describe a maturation method using ventricle-derived decellularized extracellular matrix (dECM) that promoted early-stage metabolic maturation of cardiomyocytes differentiated from human induced pluripotent stem cells (hiPSCs). Chemically and architecturally preserved particles (45-500 μm) of pig ventricular dECM were added to hiPSCs at the start of differentiation. At the end of our maturation protocol (day 15 of cardiac differentiation), we observed an intimate interaction between cardiomyocytes and dECM particles without impairment of cardiac differentiation efficiency (approx. 70% of cTNT+). Compared with control cells (those cultured without pig dECM), 15-day-old dECM-treated cardiomyocytes demonstrated increased expression of markers related to cardiac metabolic maturation, MAPK1, FOXO1, and FOXO3, and a switch from ITGA6 (the immature integrin isoform) to ITGA3 and ITGA7 (those present in adult cardiomyocytes). Electrical parameters and responsiveness to dobutamine also improved in pig ventricular dECM-treated cells. Extending the culture time to 30 days, we observed a switch from glucose to fatty acid metabolism, indicated by decreased glucose uptake and increased fatty acid consumption in cells cultured with dECM. Together, these data suggest that dECM contains endogenous cues that enable metabolic maturation of hiPSC-CMs at early stages of cardiac differentiation.

摘要

在胎儿发育过程中,心肌细胞从糖酵解转变为氧化代谢,以维持功能细胞的能量需求。最先进的心脏分化方案产生表型不成熟的心肌细胞,而常见的改善代谢成熟的方法需要多步方案,只有在心脏特化完成后才能诱导成熟。在这里,我们描述了一种使用心室衍生的去细胞细胞外基质(dECM)的成熟方法,该方法促进了从人诱导多能干细胞(hiPSC)分化的心肌细胞的早期代谢成熟。在分化开始时,将猪心室 dECM 的化学和结构上保留的颗粒(45-500μm)添加到 hiPSC 中。在我们的成熟方案结束时(心脏分化的第 15 天),我们观察到心肌细胞与 dECM 颗粒之间的密切相互作用,而不会损害心脏分化效率(约 70%的 cTNT+)。与对照细胞(那些在没有猪 dECM 的情况下培养的细胞)相比,15 天龄的 dECM 处理的心肌细胞表现出与心脏代谢成熟相关的标志物的表达增加,如 MAPK1、FOXO1 和 FOXO3,以及从 ITGA6(不成熟的整合素同工型)到 ITGA3 和 ITGA7(存在于成年心肌细胞中的)的转变。在猪心室 dECM 处理的细胞中,电参数和对多巴酚丁胺的反应性也得到了改善。将培养时间延长至 30 天,我们观察到细胞培养中存在从葡萄糖向脂肪酸代谢的转变,这表明 dECM 处理的细胞葡萄糖摄取减少,脂肪酸消耗增加。总之,这些数据表明 dECM 含有内源性线索,可使 hiPSC-CMs 在心脏分化的早期阶段实现代谢成熟。

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