用于自动膜片钳的横向微流体通道阵列芯片制造

Ding Zhipeng, Patthara Kongsuphol, Teh Poh Giao, Zhang Qingxin
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引用次数: 0

摘要

传统上,膜片钳记录是在显微镜下用微操纵器定位的玻璃移液管完成的。细胞膜片被吸进玻璃移液管,形成高电阻密封。传统膜片钳的高成本和劳动密集型方法阻碍了离子通道作为药物靶标类的全部潜力的充分实现。为了在较短的时间内以较低的成本收集大量数据,最近开发了自动化膜片钳系统。更常见的自动化膜片钳系统使用在板上有微小(1-2μm)孔的微芯片,而不是移液器来创建千兆密封并记录单个细胞。在我们之前的报道中,我们展示了一种埋藏微通道的横向孔径,它不同于普通的平面贴片孔径,更容易流体集成和封装,比平面贴片孔径密度更高。在本文中,我们提出了优化的制造工艺,并将优化的制造工艺集成到一个新的设计的具有12个独立的外侧贴片夹位的外侧贴片夹阵列芯片中,用于膜片夹的应用。最后,利用新设计的外侧膜片钳装置对大鼠胰岛素瘤(INS-1)细胞进行全细胞膜片钳测量。玻璃毛细管孔与INS-1细胞之间形成高gigasal (>1 GΩ)。稳态I-V图显示了典型的离子通道特性,整个细胞模式的寿命可以维持1小时而不破坏gigasal,足够长时间应用各种化合物和离子通道药物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Lateral micro fluidic channels array chip fabrication for automated patch clamp application
Traditionally, patch-clamp recording is accomplished with a micromanipulator-positioned glass pipette under a microscope. A cell membrane patch is sucked into the glass pipette and forms a high electrical resistance seal. The high cost and labor-intensive methods of conventional patch clamp have prevented the full potential of ion channels as a drug target class being fully realized. Automated patch clamp systems have recently been developed, in order to inexpensively collect large amounts of data in a shorter period of time. More common automation patch-clamp systems use microchips with tiny (1-2μm) holes in a plate instead of pipettes to create the gigaseals and record from single cells. In our previously reported works, a lateral aperture of a buried micro channel was demonstrated, which differs from the common planar patch aperture and is easier fluidic integration and packaging, higher-density array comparing with planar patch aperture. In this paper, we present the optimized fabrication process and integrated the optimized fabrication process to a new designed lateral patch-clamp array chip with 12 independent lateral patch-clamping sites for patch clamp application. At last, the new designed lateral patch clamp devices are utilized to conduct whole cell patch clamp measurements in rat insulinoma (INS-1) cells. High gigaseals (>1 GΩ) were formed between the glass capillary apertures and INS-1 cells. Steady state I-V plots elicited characteristic ion channel properties and longevity of the whole cell mode could be maintained for 1 h without any breakage of the gigaseals, which long enough to apply various compounds and ion channel drugs.
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