Electric field distribution analysis for the design of an electrode system in a 3D neuromuscular junction microfluidic device

被引:0
|
作者
Forconi, Flavia [1 ]
Apa, Ludovica [2 ]
D'Alvia, Livio [2 ]
Cosentino, Marianna [1 ]
Rizzuto, Emanuele [2 ]
Del Prete, Zaccaria [2 ]
机构
[1] Sapienza Univ Rome, DAHFMO Unit Histol & Med Embriol, Rome, Italy
[2] Sapienza Univ Rome, Dept Mech & Aerosp Engn, Rome, Italy
来源
2021 IEEE INTERNATIONAL SYMPOSIUM ON MEDICAL MEASUREMENTS AND APPLICATIONS (IEEE MEMEA 2021) | 2021年
关键词
electrical stimulation; electrodes; electric field; microfluidic device; neuromuscular junction; STIMULATION; CELLS;
D O I
10.1109/MeMeA52024.2021.9478775
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Electrical stimulation (ES) highly influences the cellular microenvironment, affecting cell migration, proliferation and differentiation. It also plays a crucial role in tissue engineering to improve the biomechanical properties of the constructs and regenerate the damaged tissues. However, the effects of the ES on the neuromuscular junction (NMJ) are still not fully analyzed. In this context, the development of a specialized microfluidic device combined with an ad-hoc electrical stimulation can allow a better investigation of the NMJ functionality. To this aim, we performed an analysis of the electric field distribution in a 3D neuromuscular junction microfluidic device for the design of several electrode systems. At first, we designed and modeled the 3D microfluidic device in order to promote the formation of the NMJ between neuronal cells and the muscle engineered tissue. Subsequently, with the aim of identifying the optimal electrode configuration able to properly stimulate the neurites, thus enhancing the formation of the NMJ, we performed different simulation tests of the electric field distribution, by varying the electrode type, size, position and applied voltage. Our results revealed that all the tested configurations did not induce an electric field dangerous for the cell vitality. Among these configurations, the one with cylindrical pin of 0.3 mm of radius, placed in the internal position of the neuronal chambers, allowed to obtain the highest electrical field in the zone comprising the neurites.
引用
收藏
页数:5
相关论文
共 50 条
  • [41] Effect of Near-Electric-Field 3D Printing on the β-Phase of PVDF Thin Films
    Chen, Caifeng
    Liu, Kai
    Zhong, Wuwen
    Guo, Junhao
    Tang, Xinting
    Wang, Andong
    JOURNAL OF ELECTRONIC MATERIALS, 2024, 53 (04) : 2076 - 2083
  • [42] Biofluid Behaviour in 3D Microchannel Systems: Numerical Analysis and Design Development of 3D Microchannel Biochip Separators
    Xue, Xiangdong
    Marson, Silvia
    Patel, Mayur K.
    Attia, Usama M.
    Bailey, Chris
    O'Neill, William
    Topham, David
    Desmulliez, Marc P. Y.
    2010 PROCEEDINGS 60TH ELECTRONIC COMPONENTS AND TECHNOLOGY CONFERENCE (ECTC), 2010, : 1021 - 1030
  • [43] 3D conductive monolithic carbons from pyrolyzed bamboo for microfluidic self-heating system
    Gontijo, Layne O. L.
    Barbosa Junior, Mario N.
    de Sa, Druval Santos
    Letichevsky, Sonia
    Pedrozo-Penafiel, Marlin J.
    Aucelio, Ricardo Q.
    Bott, Ivani S.
    Alves, Haimon Diniz Lopes
    Fragneaud, Benjamin
    Maciel, Indhira Oliveira
    Rossi, Andre Linhares
    Savio, Letizia
    Carraro, Giovanni
    Anja, Dosen
    Freire Jr, Fernando Lazaro
    Khosrow, Ghavami
    Paciornik, Sidnei
    Pandoli, Omar Ginoble
    CARBON, 2023, 213
  • [44] The use of 3-D electric field analysis and the analytical approach for improvement of a combined instrument transformer insulation system
    Lesniewska, E
    IEEE TRANSACTIONS ON MAGNETICS, 2002, 38 (02) : 1233 - 1236
  • [45] Electric Field-controlled Directed Migration of Neural Progenitor Cells in 2D and 3D Environments
    Meng, Xiaoting
    Li, Wenfei
    Young, Fraser
    Gao, Runchi
    Chalmers, Laura
    Zhao, Min
    Song, Bing
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2012, (60):
  • [46] Continuous-flow focusing of microparticles using induced-charge electroosmosis in a microfluidic device with 3D AgPDMS electrodes
    Jia, Yankai
    Ren, Yukun
    Jiang, Hongyuan
    RSC ADVANCES, 2015, 5 (82): : 66602 - 66610
  • [47] GLASS-CAPILLARY-EMBEDDED 3D COAXIAL MICROFLUIDIC DEVICE WITH PNEUMATIC MICROVALVE CONTROL FOR PRODUCING PATTERNED FUNCTIONAL MATERIALS
    Takakura, Naoki
    Kurashina, Yuta
    Onoe, Hiroaki
    2022 IEEE 35TH INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS CONFERENCE (MEMS), 2022, : 267 - 270
  • [48] A 3D printed microfluidic flow-cell for microscopy analysis of in situ-grown biofilms
    Kristensen, Mathilde Frost
    Leonhardt, Dirk
    Neland, Merethe Louise Bonneland
    Schlafer, Sebastian
    JOURNAL OF MICROBIOLOGICAL METHODS, 2020, 171
  • [49] Electric Field Impact on Lateral Charge Diffusivity in Charge Trapping 3D NAND Flash Memory
    Lee, Juwon
    Seo, Junho
    Nam, Jeonghun
    Kim, YongLae
    Song, Ki-Whan
    Song, Jai Hyuk
    Choi, Woo Young
    2022 IEEE INTERNATIONAL RELIABILITY PHYSICS SYMPOSIUM (IRPS), 2022,
  • [50] Electric Field Calculations of Residential Houses near UHVDC Lines Using 3D Reconstruction Method
    Wang, Donglai
    Lu, Tiebing
    Cui, Xiang
    Xie, Li
    Zhao, Luxing
    Ju, Yong
    Lu, Jiayu
    CSEE JOURNAL OF POWER AND ENERGY SYSTEMS, 2019, 5 (04): : 524 - 532