Free-flow zone electrophoresis and isoelectric focusing using a microfabricated glass device with ion permeable membranes
- 26 January 2006
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Lab on a Chip
- Vol. 6 (3) , 374-380
- https://doi.org/10.1039/b514731j
Abstract
This paper describes a microfabricated free-flow electrophoresis device with integrated ion permeable membranes. In order to obtain continuous lanes of separated components an electrical field is applied perpendicular to the sample flow direction. This sample stream is sandwiched between two sheath flow streams, by hydrodynamic focusing. The separation chamber has two open side beds with inserted electrodes to allow ventilation of gas generated during electrolysis. To hydrodynamically isolate the separation compartment from the side electrodes, a photo-polymerizable monomer solution is exposed to UV light through a slit mask for in situ membrane formation. These so-called salt-bridges resist the pressure driven fluid, but allow ion transport to enable electrical connection. In earlier devices the same was achieved by using open side channel arrays. However, only a small fraction of the applied voltage was effectively utilized across the separation chamber during free-flow electrophoresis and free-flow isoelectric focusing. Furthermore, the spreading of the carrier ampholytes into the side channels resulted in a very restricted pH gradient inside the separation chamber. The chip presented here allows at least 10 times more efficient use of the applied potential and a nearly linear pH gradient from pH 3 to 10 during free-flow isoelectric focusing could be established. Furthermore, the application of hydrodynamic focusing in combination with free-flow electrophoresis can be used for guiding the separated components to specific chip outlets. As a demonstration, several standard fluorescent markers were separated and focused by free-flow zone electrophoresis and by free-flow isoelectric focusing employing a transversal voltage of up to 150 V across the separation chamber.Keywords
This publication has 23 references indexed in Scilit:
- Free-Flow Electrophoresis on an Anodic Bonded Glass MicrochipAnalytical Chemistry, 2005
- Cytometry and Velocimetry on a Microfluidic Chip Using Polyelectrolytic Salt BridgesAnalytical Chemistry, 2005
- Efficient separation and analysis of peroxisomal membrane proteins using free‐flow isoelectric focusingElectrophoresis, 2004
- Sub-second isoelectric focusing in free flow using a microfluidic deviceLab on a Chip, 2003
- High-Speed Free-Flow Electrophoresis on ChipAnalytical Chemistry, 2003
- Low‐voltage electroosmosis pump for stand‐alone microfluidics devicesElectrophoresis, 2003
- Recent developments in preparative free flow isoelectric focusingElectrophoresis, 1998
- Hydrodynamic Focusing on a Silicon Chip: Mixing Nanoliters in MicrosecondsPhysical Review Letters, 1998
- Continuous Separation of High Molecular Weight Compounds Using a Microliter Volume Free-Flow Electrophoresis MicrostructureAnalytical Chemistry, 1996
- Free flow electrophoresis for the purification of proteins: I. Zone electrophoresis and isotachophoresisElectrophoresis, 1990