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3D printed Micro-Electro-Fluidic Probe (MeFP) for single cell electroporation

机译:用于单电池电穿孔的3D印刷微电流探针(MEFP)

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This work presents the development of a micro-electro-fluidic probe (MeFP) platform as an affordable and flexiblemicrofluidic tool for the transfection of single cells via electroporation. The platform constitutes of a 3D printed MeFP --gold-coated microfluidic probe (MFP) with an array of pin shaped microelectrodes integrated on its tip -- and an ITOcoated cell culture substrate. This setup, and submicron feature size of the MeFP, allows for a selective exposure of thetargeted cell to both the electric field and hydrodynamic flow confinement (HFC) of an intercalating agent, todemonstrate transmembrane molecule delivery through electroporation. Results show successful transfer of propidiumiodide (PI) through the membranes of single HeLa cells with an applied DC rectangular pulse– a proof-of-concept forMeFP’s application in delivering nucleic acids into eukaryotic cells (transfection). By adjusting the size of the HFC(varying injection and aspiration flow ratio), we show that the cell target area can be dynamically increased from thesingle cell footprint, to cover multiple cells. Finite Element model show that even with such low applied voltages (0.5-3Vpk-pk), the electric field generated reach the reversible electroporation threshold. These results demonstrate the MeFPas an advancement to the currently available transfection technologies for gene therapy; delivery of DNA vaccines, invitro fertilization, cancer treatment, regenerative medicine, and induced pluripotent stem (iPS) cells.
机译:这项工作介绍了微电流探头(MEFP)平台作为实惠且灵活的开发通过电穿孔转染单细胞的微流体工具。平台构成3D打印的MEFP - 金色涂层的微流体探针(MFP),带有一系列销形微电极集成在其尖端 - 和ITO上涂覆细胞培养基质。该设置和MEFP的亚微米特征大小允许选择性曝光嵌入剂的电场和流体动力流动限制(HFC)的靶向细胞,通过电穿孔证明跨膜分子递送。结果显示成功转移促进碘化物(PI)通过具有施加的直流矩形脉冲的单升HeLa细胞的膜 - 概念验证MEFP在将核酸递送到真核细胞(转染)中的应用。通过调整HFC的大小(改变注射和抽吸流量比),我们表明细胞目标区域可以动态增加单细胞足迹,涵盖多个细胞。有限元模型表明,即使具有这种低施加的电压(0.5-3VPK-PK),电场产生达到可逆电穿孔阈值。这些结果展示了MEFP作为基因治疗目前可用的转染技术的进步;递送DNA疫苗,体外施肥,癌症治疗,再生医学和诱导多能干(IPS)细胞。

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