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一种用于评估细胞对电-化学趋化场联合反应的 Gal-MµS 装置。

A Gal-MµS Device to Evaluate Cell Migratory Response to Combined Galvano-Chemotactic Fields.

机构信息

Department of Biomedical Engineering, City College of New York, New York, NY 10031, USA.

出版信息

Biosensors (Basel). 2017 Nov 21;7(4):54. doi: 10.3390/bios7040054.

Abstract

Electric fields have been studied extensively in biomedical engineering (BME) for numerous regenerative therapies. Recent studies have begun to examine the biological effects of electric fields in combination with other environmental cues, such as tissue-engineered extracellular matrices (ECM), chemical gradient profiles, and time-dependent temperature gradients. In the nervous system, cell migration driven by electrical fields, or galvanotaxis, has been most recently studied in transcranial direct stimulation (TCDS), spinal cord repair and tumor treating fields (TTF). The cell migratory response to galvano-combinatory fields, such as magnetic fields, chemical gradients, or heat shock, has only recently been explored. In the visual system, restoration of vision via cellular replacement therapies has been limited by low numbers of motile cells post-transplantation. Here, the combinatory application of electrical fields with other stimuli to direct cells within transplantable biomaterials and/or host tissues has been understudied. In this work, we developed the Gal-MµS device, a novel microfluidics device capable of examining cell migratory behavior in response to single and combinatory stimuli of electrical and chemical fields. The formation of steady-state, chemical concentration gradients and electrical fields within the Gal-MµS were modeled computationally and verified experimentally within devices fabricated via soft lithography. Further, we utilized real-time imaging within the device to capture cell trajectories in response to electric fields and chemical gradients, individually, as well as in combinatory fields of both. Our data demonstrated that neural cells migrated longer distances and with higher velocities in response to combined galvanic and chemical stimuli than to either field individually, implicating cooperative behavior. These results reveal a biological response to galvano-chemotactic fields that is only partially understood, as well as point towards novel migration-targeted treatments to improve cell-based regenerative therapies.

摘要

电场在生物医学工程(BME)中已被广泛研究,用于多种再生疗法。最近的研究开始研究电场与其他环境线索(如组织工程细胞外基质(ECM)、化学浓度梯度和时变温度梯度)联合作用的生物学效应。在神经系统中,电场驱动的细胞迁移,或电趋化性,最近在经颅直流电刺激(TCDS)、脊髓修复和肿瘤治疗电场(TTF)中进行了研究。最近才开始探索磁场、化学梯度或热休克等电-组合场对细胞迁移反应的研究。在视觉系统中,通过细胞替代疗法恢复视力受到移植后可迁移细胞数量少的限制。在这里,电场与其他刺激的组合应用来直接在可移植生物材料和/或宿主组织内引导细胞,这方面的研究还很不足。在这项工作中,我们开发了 Gal-MµS 装置,这是一种新型微流控装置,能够检查细胞对电和化学场单一和组合刺激的迁移行为。Gal-MµS 内稳定态化学浓度梯度和电场的形成通过计算建模,并通过软光刻制造的设备进行了实验验证。此外,我们在设备内利用实时成像来捕获细胞在电场和化学梯度下的轨迹,单独捕获以及组合捕获。我们的数据表明,与单独施加电场或化学刺激相比,神经细胞在联合施加电化和化学刺激时迁移的距离更长,速度更快,这表明存在协同行为。这些结果揭示了对电-化学趋化场的生物学反应,这一反应尚未完全了解,并为改善基于细胞的再生疗法的新型迁移靶向治疗指明了方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c752/5746777/21e2296d1ea9/biosensors-07-00054-g001.jpg

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