Apffel, et al., Analysis of Oligonucleotides by HPLC-Electrospray Ionization Mass Spectrometry, Anal. Chem. 1997, 69, 1320-1325. |
Ericson, et al., Preparation of Continuous Beds for Electrochromatography and Reversed-Phase Liquid Chromatography of Low-Molecular-Mass, Journal of Chromatography A, 767:33-41 (1997). |
Fields, Silica Xerogel as a Continuous Column Support for High-Performance Liquid Chromatography, Anal. Chem. 68:2709-2712 (1996). |
Fujimoto, et al., Fritless Packed Columns for Capillary Electrochromatography: Separation of Uncharged Compounds on Hydrophobic Hydrogels, Anal. Chem. 68:2753-2757 (1996). |
Fujimoto, et al., Capillary Electrochromatography of Small Molecules in Polyacryamide Gels with Electroosmotic Flow, Journal of Chromatography A, 716 107-113 (1995). |
Giovannini, et al., Anal. Chem. 70:3348-3354 (1998). |
Griffey, et al., Characterization of Oligonucleotide Metabolism in Vivo Via Liquid Chromatography/Electrosspray Tandem Mass Spectrometry with a Quadrupole Ion Trap Mass Spectrometry, Journal of Mass Spectrometry, 32: 305-313 (1997). |
Gusev, et al., Capillary Columns with in Situ Formed Porous Monolithic Packing for Micro High-Performance Liquid Chromatography and Capillary Electrochromatography, Journal of Chromatography A, 855: 273-290 (1999). |
Hansen, et al., Highly Permeable Open-Pore Polyurethane Columns for Liquid Chromatography, Journal of Chromatography, 99:123-133 (1974). |
Hjerten, et al., High-Performance Liquid Chromatography on Continuous Polymer Beds, Journal of Chromatography, 473:273-275 (1989). |
Hjerten, et al., Continuous Beds: High-Resolving, Cost-Effective Chromatographic Matrices, Nautre 356: 810-811 (1992). |
http://www.thermoquest.com/SJ_Y2K.HTML Dec. 12, 2000. |
Huber, et al., A Comparison of Micropellicular Anion-Exchange and Reversed-Phase Stationary Phases for HPLC Analysis of Oligonucleotides, LC-GC 14:114-127 (1996). |
Huber, et al., Sheath Liquid Effects Capillary High-Performance Liquid Chromatography-Electrospray Mass Spectrometry of Oligonucleotides, Journal of Chromatography A, 870:413-424 (2000). |
Huber, et al., Mutation Detection by Capillary Denaturing High-Performance Liquid Chromatography Using Monolithic Columns, J. Biochem. Biophys Methods 47:5-19 (2001). |
Huber, et al., On-Line Cation Exchange for Suppression of Adduct Formation in Negative-Ion Electrospray Mass Spectrometry of Nucleic Acids, Anal. Chem. 70:5288-5295 (1998). |
Huber, et al., Evaluation of Volatile Eluents and Electrolytes for High-Performance Liquid Chromatography-Electrospray Ionization Mass Spectrometry and Capillary Electrophoresis-Electrospray Ionization Mass Spectrometry of Proteins, I. Liquid Chromatography, Journal of Chromatography A, 849: 161-173 (1999). |
Huber et al, Analysis of Nucleic Acids by Capillary Ion-Pair Reversed-Phase HPLC Coupled to Negative-Ion Electrospray Ionization Mass Spectrometry, Anal. Chem. 71: 3730-3739, (1999). |
Ishizuka, et al., Chromatography Properties of Miniaturized Silica Rod Columns, J. High Resol. Chromatogr. 21:477-479 (1998). |
Leonard, M., New Packing Materials For Protein Chromatography, Journal of Chromatography B, 699:3-27 (1997). |
Liao, et al., Anal. Biochem. 234:27-30 (1996). |
McLuckey, et al., Tandem Mass Spectrometry of Small, Multiply Charged Oligonucleotides, j. Am. Soc. Mass Spectrom. 3:60-70 (1992). |
Minakuchi, et al., Octadecylsilylated Porous Silica Rods as Separation Media for Reversed-Phase Liquid Chromatography, Anal. Chem. 68:3498-3501 (1996). |
Moore, R., et al., A Microscale Electrospray Interface Incorporating A Monolithic, Poly (styrene-divinylbenzene) Support for On-Line Liquid Chromatography/Tandem Mass Spectrometry Analysis of Peptides and Proteins, Anal. Chem. 70:4879-4884 (1998). |
Muddiman, et al., Precise Mass Measurement of a Double-Stranded 500 Base-Pair (309 kDa) Polymerase Chain Reaction Product by Negative Ion Electrospray Ionization Fourier Transform Ion Cyclotron Resonance Mass Spectrometry, Rapid Commun. Mass Spectrom. 13, 1201-1204 (1999). |
Nordhoff, et al., Mass Spectrometry of Nucleic Acids, Mass Spectrometry Reviews, 15:67-138 (1996). |
Oberacher, et al., Preparation and Evaluation of Packed Capillary Columns for the Separation of Nucleic Acids by Ion-Pari Reversed-Phase High-Performance Liquid Chromatography, J. of Chrom. A 893:23-25 (2000). |
Palm, et al., Macroporous Polyacrylamide/Poly (Ethylene Glycol) Matrixes as Stationary Phases in Capillary Electrochromatography, Anal. Chem. 69:4499-4507 (1997). |
Peters, et al., Molded Rigid Polymer Monoliths as Separation Media for Capillary Electrochromatography, Anal. Chem. 69:3645-3649 (1997). |
Peters, et al., Molded Rigid Polymer Monoliths as Separation Media for Capillary Electrochromatography. 2. Effect of Chromatographic Conditions on the Separation, Anal. Chem. 70:2296-2302 (1998). |
Petro, et al., Molded Continuous Poly (styrene-co-divinylbenzene) Rod as a Separation Medium for the Very Fast Separation of Polymers Comparison of the Chromatographic Properties of the Monolithic Rod With Columns Packed With Porous and Non-Porous Beads in High-Performance Liquid Chromatography of Polystyrenes, Journal of Chromatography A, 752:59-66 (1996). |
Ponten, et al., Anal. Chem. 68:4369-4396 (1996). |
Potier, et al., Negative Electrospray Ionization Mass Spectrometry of Synthetic and Chemically Modified Oligonucleotides, Nucleic Acids Research, 22:3895-3903 (1994). |
Premstaller, et al. High-Performance Liquid Chromatography-Electrospray Ionization Mass Spectrometry of Single-And Double-Stranded Nucleic Acids Using Monolithic Capillary Columns Anal. Chem. 72:4386-4393 (2000). |
Rabel, et al., Advancing Separation Science with Monolithic Silica HPLC Columns, American Laboratory, 20-22 (Dec. 2000). |
Seidl, et al., Markoporose Styrol-Divinylbenzol-Copolymere Und Ihre Verwendung in der Chromatographie und zue Darstellung von Ionenaustauschern, Adv. Polymer Sci. 5:113-213 (1967). |
Stults, et al., Improved Electrospray Ionization of Synthetic Oligodeoxynucleotides, Rapid Communication in Mass Spectrometry, vol. 5:359-363 (1991). |
Suck, et al., The Structure of a Trinucleoside Diphosphate:Adenylyl-(3′,5″)-Adenylyl-(3′,5′)-Adenosine Hexahydrate, Acta Cryst. B 32:1727-1737 (1976). |
Svec, et al., Temperature, A Simple and Efficient Tool for the Control of Pore Size Distribution in Macroporous Polymers, Macromolecules 25:7580-7582 (1995). |
Tennikova, et al., An Introduction to Monolithic Disks as Stationary Phases for High Performance Biochromatography, J. High Resol. Chromatogr. 23:(1)27-38 (2000). |
Thermoquest LC/MS Application Report (1999). |
Tomer, et al., Capillary Liquid Chromatography/Mass Spectrometry, Mass Spectrometry Reviews, 13:431-457 (1994). |
Viklund, et al., Monolithic, “Molded”, Porous Materials with High Flow Characteristics for Separations, Catalysis, or Solid-Phase Chemistry: Control of Porous Properties During Polymerization, Chem. Mater. 8:744-750 (1996). |
Viklund, et al., Chem. Mater. 9:463-471 (1997). |
Xiao et al, Multiplex Capillary Denaturing High-Performance Liquid Chromatography with Laser-Induced Flurorescense Detection, Bio Techniques 30:1332-1338 (Jun. 2001). |
U.S. patent application Ser. No. 09/770,410, Huber, et al., filed Jul. 11, 2002. |
U.S. patent application Ser. No. 09/828,427, Gjerde, et al., filed Oct. 18, 2002. |
U.S. patent application Ser. No. 10/085,691, Gjerde, et al., filed Nov. 28, 2002. |
U.S. patent application Ser. No. 10/092,410, Gjerde, et al., filed Mar. 4, 2002. |
Huber, Micropellicular Stationary Phases For High-Performance Liquid Chromatography Of Double-Stranded DNA, J. of Chromatography A, 806:1-30 (1998). |