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Differential Effects of Extracellular Vesicles of Lineage-Specific Human Pluripotent Stem Cells on the Cellular Behaviors of Isogenic Cortical Spheroids

机译:沿袭特定人类多能干细胞的细胞外囊泡对等基因皮质球体细胞行为的差异作用。

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摘要

Extracellular vesicles (EVs) contribute to a variety of signaling processes and the overall physiological and pathological states of stem cells and tissues. Human induced pluripotent stem cells (hiPSCs) have unique characteristics that can mimic embryonic tissue development. There is growing interest in the use of EVs derived from hiPSCs as therapeutics, biomarkers, and drug delivery vehicles. However, little is known about the characteristics of EVs secreted by hiPSCs and paracrine signaling during tissue morphogenesis and lineage specification. Methods: In this study, the physical and biological properties of EVs isolated from hiPSC-derived neural progenitors (ectoderm), hiPSC-derived cardiac cells (mesoderm), and the undifferentiated hiPSCs (healthy iPSK3 and Alzheimer’s-associated SY-UBH lines) were analyzed. Results: Nanoparticle tracking analysis and electron microscopy results indicate that hiPSC-derived EVs have an average size of 100–250 nm. Immunoblot analyses confirmed the enrichment of exosomal markers Alix, CD63, TSG101, and Hsc70 in the purified EV preparations. MicroRNAs including miR-133, miR-155, miR-221, and miR-34a were differently expressed in the EVs isolated from distinct hiPSC lineages. Treatment of cortical spheroids with hiPSC-EVs in vitro resulted in enhanced cell proliferation (indicated by BrdU+ cells) and axonal growth (indicated by β-tubulin III staining). Furthermore, hiPSC-derived EVs exhibited neural protective abilities in Aβ42 oligomer-treated cultures, enhancing cell viability and reducing oxidative stress. Our results demonstrate that the paracrine signaling provided by tissue context-dependent EVs derived from hiPSCs elicit distinct responses to impact the physiological state of cortical spheroids. Overall, this study advances our understanding of cell‒cell communication in the stem cell microenvironment and provides possible therapeutic options for treating neural degeneration.
机译:细胞外囊泡(EVs)有助于多种信号传导过程以及干细胞和组织的整体生理和病理状态。人诱导的多能干细胞(hiPSC)具有可以模仿胚胎组织发育的独特特征。人们越来越多地将源自hiPSC的EV用作治疗剂,生物标志物和药物传递载体。然而,关于hiPSC和旁分泌信号转导的EV在组织形态发生和谱系形成过程中的特征知之甚少。方法:在这项研究中,从hiPSC衍生的神经祖细胞(外胚层),hiPSC衍生的心脏细胞(中胚层)和未分化的hiPSC(健康的iPSK3和与阿尔茨海默氏症相关的SY-UBH株)分离的EV的物理和生物学特性是分析。结果:纳米颗粒跟踪分析和电子显微镜结果表明,hiPSC衍生的电动汽车的平均大小为100–250 nm。免疫印迹分析证实了纯化的EV制剂中外泌体标记物Alix,CD63,TSG101和Hsc70的富集。包括miR-133,miR-155,miR-221和miR-34a在内的MicroRNA在从不同的hiPSC谱系中分离出的EV中表达不同。体外用hiPSC-EV治疗皮质球体可增强细胞增殖(由BrdU +细胞指示)和轴突生长(由β-微管蛋白III染色指示)。此外,hiPSC衍生的电动汽车在Aβ42低聚物处理的培养物中表现出神经保护能力,从而增强细胞活力并降低氧化应激。我们的研究结果表明,由hiPSC衍生的组织背景相关EV提供的旁分泌信号引起不同的反应,从而影响皮质球体的生理状态。总的来说,这项研究提高了我们对干细胞微环境中细胞相互作用的理解,并为治疗神经变性提供了可能的治疗选择。

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