Inducing Neural Fate: The Impact of Phenylacetate and Calcium on Human Adipose-Derived Mesenchymal Stem Cells Differentiation.

Mohsen Ghiasi, Mohammad Hajipur, Marzieh Ghollasi, Abdolreza Dayani, Mohammad-Taher Moradi, Ali Salimi
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Abstract

Introduction: Human adipose-derived stem cells (hADSCs) are considered a promising source for cell replacement therapy in degenerative and traumatic conditions. This study explores the effects of phenylacetate and calcium on the neural differentiation of hADSCs for regenerative medicine. We assessed cell viability and cytotoxicity using the MTT assay, revealing that treatment with 1μM phenylacetate significantly enhanced cell viability compared to control groups over five days, while higher concentrations resulted in cytotoxic effects.

Method: Additionally, qualitative analysis through Acridine orange/ethidium bromide (AO/EB) staining indicated normal cellular characteristics at lower phenylacetate concentrations, whereas higher doses led to observable cell death. A subsequent evaluation of intracellular calcium levels demonstrated a significant increase when hADSCs were treated with both phenylacetate and calcium.

Results: The neural differentiation potential was further assessed through the relative quantification of neuronal-specific genes, showing marked upregulation of NSE, Oligo-2, β-tubulin III, and MAP-2 in all treatment groups compared to controls. Immunohistochemistry confirmed elevated protein expression of neural markers in cultures supplemented with phenylacetate and calcium.

Conclusion: These findings suggest that phenylacetate, particularly in conjunction with calcium, enhances the neural differentiation of hADSCs, highlighting its potential utility in regenerative medicine strategies targeting neurodegenerative conditions.

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诱导神经命运:苯乙酸盐和钙对人类脂肪来源间充质干细胞分化的影响。
导言:人脂肪来源干细胞(hADSCs)被认为是退行性和创伤性疾病细胞替代疗法的理想来源。本研究探讨了苯乙酸盐和钙对用于再生医学的 hADSCs 神经分化的影响。我们使用 MTT 试验评估了细胞活力和细胞毒性,结果显示,与对照组相比,1μM 苯乙酸盐处理五天可显著提高细胞活力,而更高浓度的苯乙酸盐会导致细胞毒性效应:此外,通过吖啶橙/溴化乙锭(AO/EB)染色进行的定性分析表明,苯乙酸盐浓度较低时细胞特征正常,而浓度较高时细胞死亡明显。随后对细胞内钙水平的评估表明,当用苯乙酸盐和钙处理 hADSCs 时,细胞内钙水平会显著增加:结果:通过对神经元特异性基因的相对定量,进一步评估了神经分化潜力,结果显示,与对照组相比,所有处理组的NSE、Oligo-2、β-tubulin III和MAP-2均明显上调。免疫组化证实,在添加苯乙酸盐和钙的培养物中,神经标志物的蛋白表达量升高:结论:这些研究结果表明,苯乙酸盐,尤其是与钙结合使用时,可增强 hADSCs 的神经分化,从而凸显了其在针对神经退行性疾病的再生医学策略中的潜在作用。
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