Kamaldinov Timothy, Erndt-Marino Josh, Levin Michael, Kaplan David L, Hahn Mariah S
Department of Biomedical Engineering, Rensselaer Polytechnic Institute, Troy, New York.
Department of Biomedical Engineering, Tufts University, Medford, Massachusetts.
Bioelectricity. 2020 Mar 1;2(1):21-32. doi: 10.1089/bioe.2019.0024. Epub 2020 Mar 18.
Human mesenchymal stem cells (hMSCs) are utilized preclinically and clinically as a candidate cell therapy for a wide range of inflammatory and degenerative diseases. Despite promising results in early clinical trials, consistent outcomes with hMSC-based therapies have proven elusive in many of these applications. In this work, we attempt to address this limitation through the design of a stem cell therapy to enrich hMSCs for desired electrical and ionic properties with enhanced stemness and immunomodulatory/regenerative capacity. In this study, we sought to develop initial protocols to achieve electrically enriched hMSCs (EE-hMSCs) with distinct electrical states and assess the potential relationship with respect to hMSC state and function. We sorted hMSCs based on fluorescence intensity of tetramethylrhodamine ethyl ester (TMRE) and investigated phenotypic differences between the sorted populations. Subpopulations of EE-hMSCs exhibit differential expression of genes associated with senescence, stemness, immunomodulation, and autophagy. EE-hMSCs with low levels of TMRE, indicative of depolarized membrane potential, have reduced mRNA expression of senescence-associated markers, and increased mRNA expression of autophagy and immunomodulatory markers relative to EE-hMSCs with high levels of TMRE (hyperpolarized). : This work suggests that the utilization of EE-hMSCs may provide a novel strategy for cell therapies, enabling live cell enrichment for distinct phenotypes that can be exploited for different therapeutic outcomes.
人间充质干细胞(hMSCs)在临床前和临床中被用作多种炎症性和退行性疾病的候选细胞疗法。尽管早期临床试验取得了令人鼓舞的结果,但在许多此类应用中,基于hMSC的疗法始终难以获得一致的疗效。在这项工作中,我们试图通过设计一种干细胞疗法来解决这一局限性,以富集具有所需电学和离子特性、增强干性以及免疫调节/再生能力的hMSCs。在本研究中,我们试图制定初步方案,以获得具有不同电状态的电富集hMSCs(EE-hMSCs),并评估其与hMSC状态和功能之间的潜在关系。我们根据四甲基罗丹明乙酯(TMRE)的荧光强度对hMSCs进行分选,并研究分选群体之间的表型差异。EE-hMSCs的亚群表现出与衰老、干性、免疫调节和自噬相关基因的差异表达。与TMRE水平高(超极化)的EE-hMSCs相比,TMRE水平低(表明膜电位去极化)的EE-hMSCs衰老相关标志物的mRNA表达降低,自噬和免疫调节标志物的mRNA表达增加。这项工作表明,利用EE-hMSCs可能为细胞疗法提供一种新策略,能够富集具有不同表型的活细胞,这些表型可用于实现不同的治疗效果。