School of Electrical Engineering and Computer Science, Oregon State University, OR 97331, USA.
Lab Chip. 2014 Mar 7;14(5):979-87. doi: 10.1039/c3lc51023a.
We present novel strategies for reconfigurable, high-throughput microfluidic free-flow electrophoretic separation using electrically switchable pH actuators and 3D integrated salt bridges to allow rapid formation of stable pH gradients and efficient electrophoresis. The pH actuator is achieved by microfluidic integration of bipolar membranes which change electrolyte pH by injecting excess H(+) or OH(-) ions produced by a field-enhanced water dissociation phenomenon at the membrane junction upon voltage bias. The technique does not require conventional multiple buffer inflows and leaves no gas production as experienced in electrolysis, thus providing stable pH gradients for isoelectric focusing (IEF) separation. With the pH actuator inactivated, the platform can perform zone electrophoretic (ZE) separation in a medium of constant pH. We also describe the use of 3D integrated ion conductive polymers that serve as salt bridges for improving the voltage efficiency of electrophoresis and to allow high throughput. The proof of concept was successfully demonstrated for free-flow IEF and ZE separation of protein mixtures showing the potential and the simplicity of the platform for high-throughput and high-precision sample separation.
我们提出了新的策略,用于可重构、高通量的微流控自由流动电泳分离,使用电可切换 pH 致动器和 3D 集成盐桥,以允许快速形成稳定的 pH 梯度和有效的电泳。pH 致动器是通过双极膜的微流控集成实现的,通过在电压偏置时在膜结处的场增强水离解现象产生的过量 H(+)或 OH(-)离子注入来改变电解质 pH。该技术不需要传统的多缓冲液流入,也不会像在电解中那样产生气体,从而为等电聚焦 (IEF) 分离提供稳定的 pH 梯度。当 pH 致动器失活时,该平台可以在恒定 pH 的介质中进行区带电泳 (ZE) 分离。我们还描述了使用 3D 集成离子导电聚合物作为盐桥的用途,以提高电泳的电压效率并允许高通量。该概念验证成功地演示了蛋白质混合物的自由流动 IEF 和 ZE 分离,展示了该平台用于高通量和高精度样品分离的潜力和简单性。