Rapid Prototyping Laboratory, Mechanical Engineering Department, School of Engineering, Stanford University, Stanford, CA 94305, USA.
Biochem Biophys Res Commun. 2010 Jun 18;397(1):12-7. doi: 10.1016/j.bbrc.2010.05.003. Epub 2010 May 7.
Endogenous electric fields play an important role in embryogenesis, regeneration, and wound repair and previous studies have shown that many populations of cells, leukocytes, fibroblasts, epithelial cells, and endothelial cells, exhibit directed migration in response to electric fields. As regenerative therapies continue to explore ways to control mesenchymal progenitor cells to recreate desirable tissues, it is increasingly necessary to characterize the vast nature of biological responses imposed by physical phenomena. Murine adipose-derived stromal cells (mASCs) migrated toward the cathode in direct current (DC) fields of physiologic strength and show a dose dependence of migration rate to stronger fields. Electric fields also caused mASCs to orient perpendicularly to the field vector and elicited a transient increase in cytosolic calcium. Additionally, their galvanotactic response appears to share classic chemotactic signaling pathways that are involved in the migration of other cell types. Galvanotaxis is one predominant result of electric fields on mASCs and it may be exploited to engineer adult stem cell concentrations and locations within implanted grafts or toward sites of wound repair.
内源性电场在胚胎发生、再生和伤口修复中发挥着重要作用,先前的研究表明,许多细胞群体,包括白细胞、成纤维细胞、上皮细胞和内皮细胞,在电场的作用下表现出定向迁移。随着再生疗法不断探索控制间充质祖细胞以重现理想组织的方法,越来越有必要描述物理现象所施加的广泛生物学反应。鼠脂肪来源的基质细胞(mASCs)在生理强度的直流(DC)场中向阴极迁移,并对更强的场表现出迁移率的剂量依赖性。电场还使 mASCs垂直于场矢量排列,并引起细胞质钙的短暂增加。此外,它们的电趋性反应似乎与其他细胞类型迁移所涉及的经典趋化信号通路共享。电趋性是电场对 mASCs 的主要影响之一,它可以被利用来设计植入移植物内或伤口修复部位的成体干细胞浓度和位置。