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Microdialysis hollow fiber as a macromolecule trap for on-line coupling of solid phase microextraction and capillary electrophoresis.
Analyst. 2006 Apr; 131(4):522-8.A

Abstract

On-line coupling of solid phase microextraction (SPME) and capillary electrophoresis (CE) is highly desirable due to the apparent advantages of the two techniques particularly in the context of microanalysis. However, the hyphenation is a significant challenge, because of band broadening and analyte carryover caused by the slow kinetics of analyte desorption in liquid phase. A novel strategy was presented in this study to overcome these problems. Analytes desorbed from an SPME fiber, which was held by an adapter, were first transferred by electrophoretic migration into a short piece of microdialysis hollow fiber, which was located at the inlet of a CE system. Analytes with molecular weights greater than the molecular weight cut-off of the microdialysis material were trapped in the microdialysis hollow fiber due to the dialysis effect. Then, under another electric field with different electrode polarity, the analytes trapped in the microdialysis hollow fiber migrated into the separation capillary and were separated. In the coupling approach, the microdialysis hollow fiber functioned as a macromolecule trap and a sample pre-concentrator as well. Band broadening was eliminated because the initial sample volume was very small (at nL level). Meanwhile, analyte carryover was eliminated because the desorption time could be as long as needed. Coupling of SPME with CE including two modes, capillary zone electrophoresis (CZE) and capillary isoelectric focusing (CIEF), was successfully demonstrated with proteins as test analytes. High efficiency and high resolution were obtained. The detection limits with UV absorbance whole-column imaging detection were 3.0 x 10(-7) and 3.0 x 10(-8) M (S/N = 3) for beta-lactoglobulin A and ovalbumin, respectively.

Authors+Show Affiliations

Department of Chemistry, Nanjing University, Nanjing 210093, China.No affiliation info available

Pub Type(s)

Journal Article

Language

eng

PubMed ID

16568169

Citation

Liu, Zhen, and Janusz Pawliszyn. "Microdialysis Hollow Fiber as a Macromolecule Trap for On-line Coupling of Solid Phase Microextraction and Capillary Electrophoresis." The Analyst, vol. 131, no. 4, 2006, pp. 522-8.
Liu Z, Pawliszyn J. Microdialysis hollow fiber as a macromolecule trap for on-line coupling of solid phase microextraction and capillary electrophoresis. Analyst. 2006;131(4):522-8.
Liu, Z., & Pawliszyn, J. (2006). Microdialysis hollow fiber as a macromolecule trap for on-line coupling of solid phase microextraction and capillary electrophoresis. The Analyst, 131(4), 522-8.
Liu Z, Pawliszyn J. Microdialysis Hollow Fiber as a Macromolecule Trap for On-line Coupling of Solid Phase Microextraction and Capillary Electrophoresis. Analyst. 2006;131(4):522-8. PubMed PMID: 16568169.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Microdialysis hollow fiber as a macromolecule trap for on-line coupling of solid phase microextraction and capillary electrophoresis. AU - Liu,Zhen, AU - Pawliszyn,Janusz, Y1 - 2006/01/18/ PY - 2006/3/29/pubmed PY - 2006/3/29/medline PY - 2006/3/29/entrez SP - 522 EP - 8 JF - The Analyst JO - Analyst VL - 131 IS - 4 N2 - On-line coupling of solid phase microextraction (SPME) and capillary electrophoresis (CE) is highly desirable due to the apparent advantages of the two techniques particularly in the context of microanalysis. However, the hyphenation is a significant challenge, because of band broadening and analyte carryover caused by the slow kinetics of analyte desorption in liquid phase. A novel strategy was presented in this study to overcome these problems. Analytes desorbed from an SPME fiber, which was held by an adapter, were first transferred by electrophoretic migration into a short piece of microdialysis hollow fiber, which was located at the inlet of a CE system. Analytes with molecular weights greater than the molecular weight cut-off of the microdialysis material were trapped in the microdialysis hollow fiber due to the dialysis effect. Then, under another electric field with different electrode polarity, the analytes trapped in the microdialysis hollow fiber migrated into the separation capillary and were separated. In the coupling approach, the microdialysis hollow fiber functioned as a macromolecule trap and a sample pre-concentrator as well. Band broadening was eliminated because the initial sample volume was very small (at nL level). Meanwhile, analyte carryover was eliminated because the desorption time could be as long as needed. Coupling of SPME with CE including two modes, capillary zone electrophoresis (CZE) and capillary isoelectric focusing (CIEF), was successfully demonstrated with proteins as test analytes. High efficiency and high resolution were obtained. The detection limits with UV absorbance whole-column imaging detection were 3.0 x 10(-7) and 3.0 x 10(-8) M (S/N = 3) for beta-lactoglobulin A and ovalbumin, respectively. SN - 0003-2654 UR - https://www.unboundmedicine.com/medline/citation/16568169/Microdialysis_hollow_fiber_as_a_macromolecule_trap_for_on_line_coupling_of_solid_phase_microextraction_and_capillary_electrophoresis_ DB - PRIME DP - Unbound Medicine ER -
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