253
Views
0
CrossRef citations to date
0
Altmetric
Review

Bioanalytical Applications of Capillary Electrophoresis with Laser-Induced Native Fluorescence Detection

, &
Pages 1641-1653 | Published online: 20 Aug 2010

Bibliography

  • Gooijer C , KokSJ, ArieseF. Capillary electrophoresis with laser-induced fluorescence detection for natively fluorescent analytes. Analysis28, 679–685 (2000).
  • Paez X , HernandezL. Biomedical applications of capillary electrophoresis with laser-induced fluorescence detection. Biopharm. Drug Dispos. 22, 273–289 (2001).
  • Lee YH , MausRG, SmithBW, WinefordnerJD. Laser-induced fluorescence detection of a single molecule in a capillary. Anal. Chem. 66, 4142–4149 (1994).
  • Banks PR , PaquetteDM. Monitoring of a conjugation reaction between fluorescein isothiocyanate and myoglobin by capillary zone electrophoresis. J. Chromatogr. A693, 145–154 (1995).
  • Tseng HM , BarrettDA. Micellar electrokinetic biofluid analysis of biogenic amines using on-line sample concentration and UV laser-induced native fluorescence detection. J. Chromatogr. A1216, 3387–3391 (2009).
  • Gassmann E , KuoJE, ZareRN. Laser chemical analysis. Science230, 813–814 (1985).
  • Chen DY , DovichiNJ. Yoctomole detection limit by laser-induced fluorescence in capillary electrophoresis. J. Chromatogr. B. 657, 265–269 (1994).
  • Nie S , DadooR, ZareRN. Ultrasensitive fluorescence detection of polycyclic aromatic-hydrocarbons in capillary electrophoresis. Anal. Chem. 65, 3571–3575 (1993).
  • Craig DB , ArriagaE, WongJCY, LuH, DovichiNJ. Life and death of a single enzyme molecule. Anal. Chem. 70, 39A–43A (1998).
  • Lacroix M , PoinsotV, FournierC, CoudercF. Laser-induced fluorescence detection schemes for the analysis of proteins and peptides using capillary electrophoresis. Electrophoresis26, 2608–2621 (2005).
  • Johnson ME , LandersJP. Fundamentals and practice for ultrasensitive laser-induced fluorescence detection in microanalytical systems. Electrophoresis25, 3513–3527 (2004).
  • Rodat A , KalckF, PoinsotV, FeurerB, CoudercF. An ellipsoidal mirror for detection of laser-induced fluorescence in capillary electrophoresis system: applications for labelled antibody analysis. Electrophoresis29, 740–746 (2008).
  • Garcia-Campana AM , TavernaM, FabreH. LIF Detection of peptides and proteins in CE. Electrophoresis28, 208–232 (2007).
  • Rodat A , GavardP, CoudercF. Improving detection in capillary electrophoresis with laser-induced fluorescence via a bubble cell capillary and laser power adjustment. Biomed. Chromatogr. 23, 42–47 (2009).
  • Rodat A , CoudercB, FeurerB, CoudercF. A new evaluation technique for the detection of impurities in purified proteins via CE with native UV-LIF. Electrophoresis31, 396–402 (2010).
  • Dasgupta PK , EomIY, MorrisKJ, LiJL. Light emitting diode-based detectors absorbance, fluorescence and spectroelectrochemical measurements in a planar flow-through cell. Anal. Chim. Acta500, 337–364 (2003).
  • Sluszny C , HeY, YeungES. Light-emitting diode-induced fluorescence detection of native proteins in capillary electrophoresis. Electrophoresis26, 4197–4203 (2005).
  • Chan KC , MuschikGM, IssaqHJ. Separation of tryptophan and related indoles by micellar electrokinetic chromatography with KrF laser-induced fluorescence detection. J. Chromatogr. A718, 203–210 (1995).
  • Zhang X , StuartJN, SweedlerJV. Capillary electrophoresis with wavelength-resolved laser-induced fluorescence detection. Anal. Bioanal. Chem. 373, 332–343 (2002).
  • Lapainis T , ScanlanC, RubakhinSS, SweedlerJV. A multichannel native fluorescence system for capillary electrophoresis analysis of neurotransmitters in single neurons. Anal. Bioanal. Chem. 387, 97–105 (2007).
  • Hsieh M-H , ChangH-T. Impact of halides on the simultaneous separation of aromatic amines and their acidic metabolites by capillary electrophoresis with laser-induced native fluorescence detection under acidic conditions. J. Chromatogr. A1102, 302–308 (2006).
  • Bayle C , SiriN, PoinsotV, TreilhouM, CausseE, CoudercF. Analysis of tryptophan and tyrosine in cerebrospinal fluid by capillary electrophoresis and ‘ball lens’ UV-pulsed laser-induced fluorescence detection. J. Chromatogr. A1013, 123–130 (2003).
  • Chang H-T , YeungES. Determination of catecholamines in single adrenal medullary cells by capillary electrophoresis and laser-induced native fluorescence. Anal. Chem. 67, 1079–1083 (1995).
  • Huhn C , PutzM, MartinN, DahlenburgR, PyellU. Determination of tryptamine derivatives in illicit synthetic drugs by capillary electrophoresis and ultraviolet laser-induced fluorescence detection. Electrophoresis26, 2391–2401 (2005).
  • Paquette DM , SingR, BanksPR, WaldronKC. Capillary electrophoresis with laser-induced native fluorescence detection for profiling body fluids. J. Chromatogr. B714, 47–57 (1998).
  • Li Y . PhD thesis: Application of capillary electrophoresis in metabolic profiling. University of Nottingham library, Nottingham UK (2007).
  • Liu Q , LiuY, GuoM, LuoX, YaoS. A simple and sensitive method of nonaqueous capillary electrophoresis with laser-induced native fluorescence detection for the analysis of chelerythrine and sanguinarine in Chinese herbal medicines. Talanta70, 202–207 (2006).
  • Liu Q , LiuY, LiY, YaoS. Nonaqueous capillary electrophoresis coupled with laser-induced native fluorescence detection for the analysis of berberine, palmatine, and jatrorrhizine in Chinese herbal medicines. J. Sep. Sci. 29, 1268–1274 (2006).
  • Soetebeer UB , Schierenberg M-O, Schulz H, Hempel G, Andresen P, Blaschke G. Simultaneous quantification of etoposide and etoposide phosphate in human plasma by capillary electrophoresis using laser-induced native fluorescence detection. Anal. Chem. 73, 2178–2182 (2001).
  • Soetebeer UB , Schierenberg M-O, Schulz H, Grunefeld G, Andresen P, Blaschke G. Assay of tramadol in urine by capillary electrophoresis using laser-induced native fluorescence detection. J. Chromatogr. B745, 271–278 (2000).
  • Lurie IS , AnexDS, FintschenkoY, Choi W-Y. Profiling of impurities in heroin by capillary electrochromatography and laser-induced fluorescence detection. J. Chromatogr. A924, 421–427 (2001).
  • Lurie IS , ChanKC, SpratleyTK, CasaleJF, IssaqHJ. Separation and detection of acidic and neutral impurities in illicit heroin via capillary electrophoresis. J. Chromatogr. B669, 3–13 (1995).
  • Horstkötter C , Jiménez-LozanoE, BarrónD, BarbosaJ, BlaschkeG. Determination of residues of enrofloxacin and its metabolite ciprofloxacin in chicken muscle by capillary electrophoresis using laser-induced fluorescence detection. Electrophoresis23, 3078–3083 (2002).
  • Riddick L , BrumleyWC. Capillary electrophoresis with laser-induced fluorescence: environmental applications. Methods Mol. Biol. 384, 119–134 (2008).
  • Kok SJ , KristensonEM, GooijerC, VelthorstNH, BrinkmanUATH. Wavelength-resolved laser-induced fluorescence detection in capillary electrophoresis: naphthalenesulphonates in river water. J. Chromatogr. A771, 331–341 (1997).
  • Kok SJ , HoornwegGPH, de Ridder T, Brinkman UATH, Velthorst NH, Gooijer C. Generation of 275.4-nm UV output from a large-frame argon-ion laser for fluorescence detection in capillary electrophoresis. J. Chromatogr. A806, 355–360 (1998).
  • Kuijt J , van Teylingen R, Nijbacker T, Ariese F, Brinkman UATh, Gooijer C. Detection of nonderivatized peptides in capillary electrophoresis using quenched phosphorescence. Anal. Chem. 73, 5026–5029 (2001).
  • Swaile DF , StepaniakMJ. Laser-based fluorimetric detection schemes for the analysis of proteins by capillary zone electrophoresis. J. Liquid Chromatogr. 14, 869–893 (1991).
  • Chan KC , MuschikGM, IssaqHJ. Solid-sate UV laser-induced fluorescence detection in capillary electrophoresis. Electrophoresis21, 2062–2066 (2000).
  • Kašika V . Recent advances in capillary electrophoresis of peptides. Electrophoresis22, 4139–4162 (2001).
  • Schulze P , BelderD. Label-free fluorescence detection in capillary and microchip electrophoresis. Anal. Bioanal. Chem. 393, 515–525 (2009).
  • Turner EH , LauterbachK, PugsleyHR, PalmerVR, DovichiNJ. Detection of green fluorescent protein in a single bacterium by capillary electrophoresis with laser-induced fluorescence. Anal. Chem. 79, 778–781 (2007).
  • Quirino JP , DulayMT, FuL, ModyTD, ZareRN. Capillary electrophoresis separation and native laser-induced fluorescence detection of metallotexaphyrins. J. Sep. Sci. 25, 819–824 (2002).
  • Zhang J-F , MaL, LiuX, LuY-T. Using capillary electrophoresis with laser-induced fluorescence to study the interaction of green fluorescent protein-labeled calmodulin with Ca2+- and calmodulin-binding protein. J. Chromatogr. B804, 413–420 (2004).
  • Viskari PJ , KinkadeCS, ColyerCL. Determination of phycobiliproteins by capillary electrophoresis with laser-induced fluorescence detection. Electrophoresis22, 2327–2335 (2001).
  • Viskari PJ , ColyerCL. Separation and quantitation of phycobiliproteins using phytic acid in capillary electrophoresis with laser-induced fluorescence detection. J. Chromatogr. A972, 269–276 (2002).
  • Tong W , YeungES. On-column monitoring of secretion of catecholamines from single bovine adrenal chromaffin cells by capillary electrophoresis. J. Neurosci. Meth. 76, 193–201 (1997).
  • Chen S , LillardSJ. Continuous cell introduction for the analysis of individual cells by capillary electophorsis. Anal. Chem. 73, 111–118 (2001).
  • Tong W , YeungES. Monitoring single cell pharmacokinetics by capillary electrophoresis and laser-induced native fluorescence. J. Chromatogr. B689, 321–325 (1997).
  • Borland LM , KottegodaS, PhillipsKS, AllbrittonNL. Chemical analysis of single cells. Ann. Rev. Anal. Chem. 1, 191–227 (2008).
  • Woods LA , RoddyTP, EwingAG. Capillary electrophoresis of single mammalian cells. Electrophoresis25, 1181–1187 (2004)
  • Cohen D , DickersonJA, WhitmoreCDet al. Chemical cytometry: fluorescence-based single-cell analysis. Ann. Rev. Anal. Chem. 1, 165–190 (2008).
  • Arcibal IG , SantilloMF, EwingAG. Capillary electrophoresis for the analysis of single cells: sampling, detection, and applications. In:Handbook of Capillary and Microchip Electrophoresis and Associated Microtechniques (3rd Edition). Landers JP (Eds) 429–443(2008).
  • Miao H , RubakhinSS, SweedlerJV. Analysis of serotonin release from single neuron soma using capillary electrophoresis and laser-induced fluorescence with a pulsed deep-UV NeCu laser. Anal. Bioanal. Chem. 377, 1007–1013 (2003).
  • Lillard SJ , YeungES, McCloskeyMA. Monitoring exocytosis and release from individual mast cells by capillary electrophoresis with laser-induced native fluorescence detection. Anal. Chem. 68, 2897–2904 (1996).
  • Ho AM , YeungES. Capillary electrophoretic study of individual exocytotic events in single mast cells. J. Chromatogr. A817, 377–382 (1998).
  • Fuller RR , MorozLL, GilletteR, SweedlerJV. Single neuron analysis by capillary electrophoresis with fluorescence spectroscopy. Neuron20, 173–181 (1998).
  • Hsieh M-H , ChangH-T. Discontinuous electrolyte systems for improved detection of biologically active amines and acids by capillary electrophoresis with laser-induced native fluorescence detection. Electrophoresis26, 187–195 (2005).
  • Hsieh M-M , HsuC-E, TsengW-L, ChangH-T. Amplification of small analytes in polymer solution by capillary electrophoresis. Electrophoresis23, 1633–1641 (2002).
  • Tseng W-L , ChangH-T. On-line concentration and separation of proteins by capillary electrophoresis using polymer solutions. Anal. Chem. 72, 4805–4811 (2000).
  • Tseng W-L , LinY-W, ChangH-T. Improved separation of microheterogeneities and isoforms of proteins by capillary electrophoresis using segmental filling with SDS and PEO in the background electrolyte. Anal. Chem. 74, 4828–4834 (2002).
  • Tseng W-L , ChangH-T. Regulation of electroosmotic flow and electrophoretic mobility of proteins for concentration without desalting. J. Chromatogr. A924, 93–101 (2001).
  • Hellmich W , GreifD, PelargusC, AnselmettiD, RosA. Improved native UV laser-induced fluorescence detection for single cell analysis in poly(dimethylsiloxane) microfluidic devices. J. Chromatogr. A1130, 195–200 (2006).
  • Schulze P , LudwigM, KohlerF, BelderD. Deep UV laser-induced fluorescence detection of unlabeled drugs and proteins in microchip electrophoresis. Anal. Chem. 77, 1325–1329 (2005).
  • Prata C , BonnafousP, FraysseN, TreilhouM, PoinsotV, CoudercF. Recent advances in amino acid analysis by capillary electrophoresis. Electrophoresis22, 4129–4138 (2001).
  • Chang H-T , YeungES. On-column digestion of protein for peptide mapping by capillary zone electrophoresis with laser-induced native fluorescence. Anal. Chem. 65, 2947–2951 (1993).
  • Hellmich W , PelargusC, LeffhalmK, RosA, AnselmettiD. Single cell manipulation, analytics, and label-free protein detection in microfluidic devices for systems nanobiology. Electrophoresis26, 3689–3696 (2005).
  • Glazer AN . Phycobiliproteins – a family of valuable, widely used fluorophoresJ. Appl. Phycol. 6, 105–112 (1994).
  • Park YH , ZhangX, RubakhinSS, SweedlerJV. Independent optimization of capillary electrophoresis separation and native fluorescence detection conditions for indolamine and catecholamine measurements. Anal. Chem. 71, 4997–5002 (1999).
  • Benturquia N , CoudercF, SauvinetV, OrsetCet al. Analysis of serotonin in brain microdialysates using capillary electrophoresis and native laser-induced fluorescence detection. Electrophoresis26, 1071–1079 (2005).
  • Squires LN , TalbotKN, RubakhinSS, SweedlerJV. Serotonin catabolism in the central and enteric nervous systems of rats upon induction of serotonin syndrome. J. Neurochem. 103, 174–180 (2007).
  • Squires LN , JakubowskiJA, StuartJNet al. Serotonin catabolism and the formation and fate of 5-hydroxyindole thiazolidine carboxylic acid. J. Biol. Chem. 281, 13463–13470 (2006).
  • Zhang X , SweedlerJV. Ultraviolet native fluorescence detection in capillary electrophoresis using a metal vapor NeCu laser. Anal. Chem. 73, 5620–5624 (2001).
  • Kuo I-T , HuangY-F, ChangH-T. Silica nanoparticles for separation of biologically active amines by capillary electrophoresis with laser-induced native fluorescence detection. Electrophoresis26, 2643–2651 (2005).
  • Hustad S , UelandPM, SchneedeJ. Quantification of riboflavin, flavin mononucleotide, and flavin adenine dinucleotide in human plasma by capillary electrophoresis and laser-induced fluorescence detection. Clin. Chem. 45, 862–868 (1999).
  • Zabzdyr JL , LillardSJ. Novel elution strategy for monitoring DNA counter-migration in the presence of electroosmotic flow. J. Chromatogr. A1040, 283–290 (2004).
  • Qin J , FungY. Zhu D, Lin B. Native fluorescence detection of flavin derivatives by microchip capillary electrophoresis with laser-induced fluorescence intensified charge-coupled device detection. J. Chromatogr. A1027, 223–229 (2004).
  • Caslavska J , ThormannW. Monitoring of drugs and metabolites in body fluids by capillary electrophoresis with XeHg lamp-based and laser-induced fluorescence detection. Electrophoresis25, 1623–1631 (2004).
  • Zaugg S , ZhangX, SweedlerJ, ThormannW. Determination of salicylate, gentisic acid and salicyluric acid in human urine by capillary electrophoresis with laser-induced fluorescence detection. J. Chromatogr. B752, 17–31 (2001).
  • Chankvetadze B , BurjanadzeN, BlaschkeG. Enantioseparation of the anticoagulant drug phenprocoumon in capillary electrophoresis with UV and laser-induced fluorescence detection and application of the method to urine samples. Electrophoresis22, 3281–3285 (2001).
  • Soini H , NovotnyMV. Determination of naproxen in serum by capillary electrophoresis with ultraviolet absorbance and laser-induced fluorescence detection. J. Microcol. Sep. 4, 313–318 (1992).
  • Kuijt J , Garcia-RuizC, StroombergGJet al. Laser-induced fluorescence detection at 266 nm in capillary electrophoresis polycyclic aromatic hydrocarbon metabolites in biota. J. Chromatogr. A907, 291–299 (2001).
  • Beekman MC , LingemanH, Brinkman UATh, Gooijer C. determination of the isoflavone formononetin in red clover (Trifolium pretense L.) by micellar electrokinetic chromatography combined with deep-uv laser-induced wavelength-resolved fluorescence detection. J. Microcol. Sep. 11, 347–352 (1999).
  • Caslavska J , GassmannE, ThormannW. Modification of a tunable UV-visible capillary electrophoresis detector for simultaneous absorbance and fluorescence detection: profiling of body fluids for drugs and endogenous compounds. J. Chromatogr. A709, 147–15 (1995).
  • Schappler J , StaubA, Veuthey J-L, Rudaz S. Highly sensitive detection of pharmaceutical compounds in biological solutions using capillary electrophoresis coupled with laser-induced native fluorescence. J. Chromatogr. A1204, 183–190 (2008).
  • Stalberg O , WesterlundD, Hultin U-K, Schmidt S. Improvements in drug purity determination by capillary electrophoresis using UV-absorption and LIF-detection with a UV-laser. Chromatographia44, 355–361 (1997).
  • Alnajjar A , ButcherJA, McCordB. Determination of multiple drugs of abuse in human urine using capillary electrophoresis with fluorescence detection. Electrophoresis25, 1592–1600 (2004).
  • Anderson AB , CiriacksCM, FullerKM, ArriagaEA. Distribution of zeptomole-abundant doxorubicin metabolites in subcellular fractions by capillary electrophoresis with laser-induced fluorescence detection. Anal. Chem. 75, 8–15 (2003).
  • Simeon N , ChatelutE, CanalP, NertzM, CoudercF. Anthracycline analysis by capillary electrophoresis. Application to the analysis of daunorubicine in Kaposi sarcoma tumor. J. Chromatogr A. 853, 449–454 (1999).

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.