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Regulation of adipose‐tissue‐derived stromal cell orientation and motility in 2D‐ and 3D‐cultures by direct‐current electrical field
Authors:Gang Yang  Xiaomei Ren  Kunlong Ma  Zhenghua Xiao  Ying Wang  Yingqiang Guo
Affiliation:1. Department of Medical Information and Engineering, School of Electrical Engineering and Information, Sichuan University, Chengdu, ChinaBoth authors contributed equally to this work.;2. Department of Medical Information and Engineering, School of Electrical Engineering and Information, Sichuan University, Chengdu, China;3. Department of Orthopaedics, Yongchuan Hospital, Chongqing Medical University, Chongqing, China;4. Department of Cardiovascular Surgery, West China Hospital, Sichuan University, Chengdu, China
Abstract:Cell alignment and motility play a critical role in a variety of cell behaviors, including cytoskeleton reorganization, membrane‐protein relocation, nuclear gene expression, and extracellular matrix remodeling. Direct current electric field (EF) in vitro can direct many types of cells to align vertically to EF vector. In this work, we investigated the effects of EF stimulation on rat adipose‐tissue‐derived stromal cells (ADSCs) in 2D‐culture on plastic culture dishes and in 3D‐culture on various scaffold materials, including collagen hydrogels, chitosan hydrogels and poly(L‐lactic acid)/gelatin electrospinning fibers. Rat ADSCs were exposed to various physiological‐strength EFs in a homemade EF‐bioreactor. Changes of morphology and movements of cells affected by applied EFs were evaluated by time‐lapse microphotography, and cell survival rates and intracellular calcium oscillations were also detected. Results showed that EF facilitated ADSC morphological changes, under 6 V/cm EF strength, and that ADSCs in 2D‐culture aligned vertically to EF vector and kept a good cell survival rate. In 3D‐culture, cell galvanotaxis responses were subject to the synergistic effect of applied EF and scaffold materials. Fast cell movement and intracellular calcium activities were observed in the cells of 3D‐culture. We believe our research will provide some experimental references for the future study in cell galvanotaxis behaviors.
Keywords:3D‐culture  alignment  electrical stimulation  scaffold  stem cells
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