Lard Mercy, Ho Bao D, Beech Jason P, Tegenfeldt Jonas O, Prinz Christelle N
Division of Solid State Physics and NanoLund, Lund University 221 00 Lund Sweden
RSC Adv. 2022 Oct 24;12(47):30295-30303. doi: 10.1039/d2ra05119b.
Nanostraw substrates have great potential for achieving minimally invasive cell transfection. Cells located on the nanostraw substrate are subjected to mild DC electric pulses applied across the nanostraw substrate, which open pores in the cell membrane on top of the nanostraws and drives charged cargo through these pores electrophoresis. However, with this method, the current may leak through uncovered nanostraws, thereby decreasing the desired effect in the cell-covered nanostraws. A minimization of the number of uncovered nanostraws could be achieved by high cell coverage, but this is challenging when working with small cell populations. Nanostraw substrates of smaller area could be covered by smaller cell populations but are hard to integrate into fluidics systems. Here, we use simulations and experiments to show that this issue can be addressed by covering the nanostraw substrate with an insulating layer containing pores of similar size to cells. The pores act as traps into which cells can be guided using dielectrophoresis, ensuring a high degree of occupancy while maintaining a high cell viability, even if the total number of cells is low.
纳米吸管基底在实现微创细胞转染方面具有巨大潜力。位于纳米吸管基底上的细胞会受到施加在纳米吸管基底上的温和直流电场脉冲作用,这些脉冲会在纳米吸管顶部的细胞膜上打开孔道,并通过电泳驱动带电物质穿过这些孔道。然而,使用这种方法时,电流可能会通过未被覆盖的纳米吸管泄漏,从而降低细胞覆盖的纳米吸管中所需的效果。通过高细胞覆盖率可以实现未被覆盖的纳米吸管数量的最小化,但在处理少量细胞群体时这具有挑战性。较小面积的纳米吸管基底可以被较少的细胞群体覆盖,但难以集成到流体系统中。在这里,我们通过模拟和实验表明,通过用含有与细胞大小相似的孔的绝缘层覆盖纳米吸管基底,可以解决这个问题。这些孔充当陷阱,利用介电泳可以将细胞引导到其中,即使细胞总数较低,也能确保高占有率并保持高细胞活力。