UHPLC/MS: An Efficient Tool for Determination of Illicit Drugs



Similar documents
Simultaneous Quantitation of 43 Drugs in Human Urine with a Dilute-and-Shoot LC-MS/MS Method

Rapid Screening Method for Illicit Drugs, Using an Advanced Solid Core UHPLC Column and UHPLC System with MS/MS Detection

Thermo Scientific Prelude SPLC System FPO. Making LC/MS accessible. to clinical research and toxicology labs

LC-MS/MS Method for the Determination of Docetaxel in Human Serum for Clinical Research

SPE, LC-MS/MS Method for the Determination of Ethinyl Estradiol from Human Plasma

Selective Testosterone Analysis in Human Serum by LC-FAIMS-MS/MS

The Use of Micro Flow LC Coupled to MS/MS in Veterinary Drug Residue Analysis

Daniel M. Mueller, Katharina M. Rentsch Institut für Klinische Chemie, Universitätsspital Zürich, CH-8091 Zürich, Schweiz

Utilization of Rapid LC-MS for Screening and Quantitative Analysis of Pesticides in Food Matrix using an Exactive Plus Benchtop Orbitrap Platform

Overview. Triple quadrupole (MS/MS) systems provide in comparison to single quadrupole (MS) systems: Introduction

Fast, Reproducible LC-MS/MS Analysis of Dextromethorphan and Dextrorphan

Analysis of the Vitamin B Complex in Infant Formula Samples by LC-MS/MS

Extraction of Epinephrine, Norepinephrine and Dopamine from Human Plasma Using EVOLUTE EXPRESS WCX Prior to LC-MS/MS Analysis

Using Natural Products Application Solution with UNIFI for the Identification of Chemical Ingredients of Green Tea Extract

Guide to Reverse Phase SpinColumns Chromatography for Sample Prep

GENERAL UNKNOWN SCREENING FOR DRUGS IN BIOLOGICAL SAMPLES BY LC/MS Luc Humbert1, Michel Lhermitte 1, Frederic Grisel 2 1

# LCMS-35 esquire series. Application of LC/APCI Ion Trap Tandem Mass Spectrometry for the Multiresidue Analysis of Pesticides in Water

AMD Analysis & Technology AG

Thermo Scientific SIEVE Software for Differential Expression Analysis

Quick and Sensitive Analysis of Multiclass Veterinary Drug Residues in Meat, Plasma, and Milk on a Q Exactive Focus LC-MS System

Simultaneous qualitative and quantitative analysis using the Agilent 6540 Accurate-Mass Q-TOF

Thermo Scientific ClinQuan MD Software For In Vitro Diagnostic Use. Confidence in Results With Data Integrity

Overview. Introduction. AB SCIEX MPX -2 High Throughput TripleTOF 4600 LC/MS/MS System

Determination of Pesticide Residues in Drinking Water Using Automated Solid-Phase Extraction and Gas Chromatography with Nitrogen Phosphorus Detection

TargetQuan 3 Software. Leading the way in regulatory. POPs quantification. Bullet Bullet Bullet

Thermo Scientific HyperSep Solid Phase Extraction Method Development Guide

Pesticide Analysis by Mass Spectrometry

IC-MS and LC-MS Determination of Ionic Liquids, Counterions, and Impurities

Micromass LCT User s Guide

A Complete Solution for Method Linearity in HPLC and UHPLC

Analysis of Free Bromate Ions in Tap Water using an ACQUITY UPLC BEH Amide Column

SCREENING FOR DRUGS IN SERUM AND URINE BY LC/ESI/CID-MS AND MS/MS WITH LIBRARY SEARCHING *

Overview. Purpose. Methods. Results

Technical Report. Automatic Identification and Semi-quantitative Analysis of Psychotropic Drugs in Serum Using GC/MS Forensic Toxicological Database

One Source Toxicology Laboratory, 1213 Genoa Red Bluff, Pasadena, Texas 77504

Thermo Scientific Compound Discoverer Software. A New Generation. of integrated solutions for small molecule structure ID

CONFIRMATION OF ZOLPIDEM BY LIQUID CHROMATOGRAPHY MASS SPECTROMETRY

Simultaneous Metabolite Identification and Quantitation with UV Data Integration Using LightSight Software Version 2.2

Chemistry 321, Experiment 8: Quantitation of caffeine from a beverage using gas chromatography

Thermo Scientific ExactFinder Software

[ Care and Use Manual ]

New drugs of abuse? A case study on Phenazepam & Methoxetamine

Advantages of Polar, Reversed- Phase HPLC Columns for the Analysis of Drug Metabolites

Thermo Scientific PepFinder Software A New Paradigm for Peptide Mapping

Analyzing Small Molecules by EI and GC-MS. July 2014

WATERS QUANTITATIVE ANALYSIS solutions

Hydrophilic-Interaction Chromatography (HILIC) for LC-MS/MS Analysis of Monoamine Neurotransmitters using XBridge BEH Amide XP Columns

Automated Method Development Utilizing Software-Based Optimization and Direct Instrument Control

Comparison of the Reversed-Phase Selectivity of Solid Core HPLC Columns

MEPS - Micro Extraction by Packed Sorbent Online SPE for GC and LC sample preparation - Extraction to injection in a single process

FT-NIR for Online Analysis in Polyol Production

LC-MS/MS for Chromatographers

PosterREPRINT AN LC/MS ORTHOGONAL TOF (TIME OF FLIGHT) MASS SPECTROMETER WITH INCREASED TRANSMISSION, RESOLUTION, AND DYNAMIC RANGE OVERVIEW

Third Party Instrument Control with Chromeleon Chromatography Data System (CDS) Software

Thermo Scientific ConFlo IV Universal Interface

Thermo Scientific Syncronis HPLC Columns. Technical Manual

STANFORD UNIVERSITY MASS SPECTROMETRY 333 CAMPUS DR., MUDD 175 STANFORD, CA

Supplementary Materials and Methods (Metabolomics analysis)

Cliquid Drug Screen & Quant Software for Routine Forensic Toxicology. great interest in forensic, toxicological and clinical research laboratories.

Thermo Scientific SOLA SPE cartridges and plates Technical Guide. Join the revolution. unparalleled performance

Making the Leap to LC/MS/MS: Enhancing and Accelerating Clinical Research and Forensic Toxicology Applications

SIMULTANEOUS DETERMINATION OF NALTREXONE AND 6- -NALTREXOL IN SERUM BY HPLC

for mass spectrometry calibration tools Thermo Scientific Pierce Controls and Standards for Mass Spectrometry

Therapeutic Drug Monitoring of Antiretroviral Drugs with HPLC-MS

Background Information

In-Depth Qualitative Analysis of Complex Proteomic Samples Using High Quality MS/MS at Fast Acquisition Rates

A Generic LC-MS Method for the Analysis of Multiple of Drug of Abuse Classes with the Thermo Scientific Exactive TM System

Comprehensive LC/MS Analysis of Illicit and Pain Management Drugs, Including Their Metabolites, in Urine

Advantages of the LTQ Orbitrap for Protein Identification in Complex Digests

How To Use An Acquity Qda Detector

Application Note # LCMS-92 Interlaboratory Tests Demonstrate the Robustness and Transferability of the Toxtyper Workflow

Electrospray Ion Trap Mass Spectrometry. Introduction

SCREENING FOR THE PRESENCE OF PARA-METHYLTHIOAMPHETAMINE IN URINE BY SOME COMMERCIAL IMMUNOASSAYS AND CONFIRMATION BY GC/MS

Making the Leap to LC/MS/MS: Enhancing and Accelerating Clinical Research and Forensic Toxicology Applications

A High Throughput Automated Sample Preparation and Analysis Workflow for Comprehensive Forensic Toxicology Screening using LC/MS/MS

How To Test For Contamination In Large Volume Water

Step-by-Step Analytical Methods Validation and Protocol in the Quality System Compliance Industry

Analysis of Polyphenols in Fruit Juices Using ACQUITY UPLC H-Class with UV and MS Detection

Application Note # MS-14 Fast On-site Identification of Drugs with the mobile GC/MS system E²M

Ultra Fast UHPLC-LCMSMS Method Development in Clinical Drug Monitoring

Opiates in Urine by SAMHSA GC/MS

Quantitative analysis of anabolic steroids in control samples from food-producing animals using a column-switching LC-HESI-MS/MS assay

Thermo Scientific SOLAµ SPE Plates Technical Guide. Consistent excellence. for bioanalysis

Method Development of LC-MS/MS Analysis of Aminoglycoside Drugs: Challenges and Solutions

A fully quantitative research method for the analysis of lead in whole blood using the Thermo Scientific icap Q ICP-MS

Application of Structure-Based LC/MS Database Management for Forensic Analysis

HRMS in Clinical Research: from Targeted Quantification to Metabolomics

Determination of Anabolic Steroids in Horse Urine by SPE and LC-MS/MS

Request for Quotes Goods/Trade Services RFQ for Gas Chromatograph Mass Spectrometer (GCMS) (PCS# RFQ)

Gas Chromatography Liner Selection Guide

UPLC-MS/MS Analysis of Aldosterone in Plasma for Clinical Research

Method development for analysis of formaldehyde in foodsimulant. melamine-ware by GC-MS and LC-MS/MS. Internal Technical Report

AppNote 1/2012. Rapid Cleanup and Comprehensive Screening of Pain Management Drugs in Urine using Automated Disposable Pipette Extraction and LC-MS/MS

Application Note. Determination of Nitrite and Nitrate in Fruit Juices by UV Detection. Summary. Introduction. Experimental Sample Preparation

The Theory of HPLC. Gradient HPLC

Online SPE-LC-APCI-MS/MS for the Determination of Steroidal Hormones in Drinking Water

Analysis of Pesticides in Vegetables Using the Agilent 1260 Infinity Analytical SFC System with Triple Quadrupole MS Detection

Transcription:

Application Note: 439 UHPLC/MS: An Efficient Tool for Determination of Illicit Drugs Guifeng Jiang, Thermo Fisher Scientific, San Jose, CA, USA Key Words Accela UHPLC System MSQ Plus MS Detector Drugs of Abuse Hypersil GOLD PFP Columns Sensitivity Goal Optimize a UHPLC/MS method with respect to stationary phase, mobile phase, and detector settings to achieve picogram level quantitation of fourteen drugs and metabolites employing a 12 minutes separation. Introduction Gas chromatography-mass spectrometry (GC-MS) is commonly employed for the separation and identification of drugs and metabolites in forensic toxicology, using electron impact (EI) or chemical ionization (CI). 1 This methodology has become a gold standard in terms of admissibility and defensibility in court because of its good sensitivity, excellent selectivity and a high degree of standardization. 2 However, laborious and time consuming derivatization procedures and sample clean ups are mandatory in most cases. LC/MS methods eliminate the need to derivatize and often simplify sample preparation. However, long run times and low separation efficiency limit the utility of conventional HPLC. Ultra high performance liquid chromatography (UHPLC) performs separations 5 to 10 times faster than conventional HPLC by employing sub-2 µm diameter particles. The 1-2 second peak widths and relatively high separation efficiency of UHPLC are more competitive with capillary GC, making UHPLC-MS an attractive alternative method for illicit drug analysis. This application note illustrates the separation and detection of a mixture of 14 illicit drugs/metabolites by ultra high performance liquid chromatography-mass spectrometry (UHPLC-MS). The drugs/metabolites are separated on a Hypersil GOLD PFP, 1.9 µm, 100 x 2.1 mm column and detected by a fast scanning single quadrupole mass spectrometer. Experimental Conditions 1. Drug Standard Preparation Pseudoephedrine, ephedrine, amphetamine, methamphetamine, 3,4-methylenedioxy-N-methamphetamine (3,4-MDMA), oxycodone, hydrocodone, clonazepam, noscapine, cocaine, caffeine, tetrahydrocannabinol (THC), cannabinol and cannabidiol standards (1 mg/ml in methanol) were purchased from Alltech-Applied Science (State College, PA, USA). The above fourteen compounds were mixed with the optimized molar ratio in the range of 1 to 100 and diluted to 0.1 ppm with methanol to make the drug mixture standards. 2. Chromatographic Conditions Chromatographic analyses were performed using the Accela UHPLC system (Thermo Scientific, San Jose, CA). The chromatographic conditions were as follows: LC Column: Hypersil GOLD, 1.9 µm, 20 x 2.1 mm Hypersil GOLD, 1.9 µm, 50 x 2.1 mm Hypersil GOLD, 1.9 µm, 100 x 2.1 mm Hypersil GOLD, aq (polar endcapped C18), 1.9 µm, 100 x 2.1 mm Hypersil GOLD PFP (perfluorinated phenyl), 1.9 µm, 100 x 2.1 mm Hypersil GOLD PFP (perfluorinated phenyl), 1.9 µm, 50 x 2.1 mm Column Temperature: 45 C Injection: 1 µl Partial Loop Injection, 25 µl Loop Size Syringe Speed: 8 µl/sec Flush Speed: 100 µl/sec Flush Volume: 400 µl Wash Volume: 100 µl Flush/Wash Source: Bottle with methanol Gradients: Method I Column: Hypersil GOLD PFP 1.9 µm, 100 x 2.1 mm A: Water (0.06% acetic acid) B: Acetonitrile (0.06% acetic acid) C: Methanol (0.06% acetic acid) Time (min) Eluent A% Eluent B% Eluent C% 0.00 95.0 1.0 4.0 0.10 88.0 2.4 9.6 5.00 85.0 3.0 12.0 13.00 5.0 19.0 76.0 13.90 5.0 19.0 76.0 14.00 95.0 1.0 4.0 15.00 95.0 1.0 4.0 For the other gradient methods used, see Appendix A for details.

3. Mass Spectrometer Conditions MS analysis was carried out on a MSQ Plus single quadrupole LC-MS detector (Thermo Scientific, San Jose, CA). The MS conditions were as follows: Ionization: Electrospray (ESI) Polarity: Positive Probe Temperature: 450 C Cone Voltage: 60 V Scan Mode: Full scans (100-500 m/z ) and/or Selected ion monitoring (SIM) ESI Voltage: 4.5 kv Results and Discussion 1. MS Detection Both positive and negative electrospray analysis were performed using the polarity switch function of the Xcalibur software. All of the analytes exhibited higher ionization efficiency in the positive ion mode compared with the negative mode. The MS spectra of the drug standards show both molecular ion signals of [M+H] + and acetonitrile adducts of the form [M+ACN+H] +. For 13 of the analytes, the signal from the molecular ion was more intense than the signal from the acetonitrile adduct. For amphetamine, the most intense signal was from the acetonitrile adduct [M+ACN+H] + at m/z of 177.2 (data not shown). 2. Separations with Standard Stationary Phases Three columns were evaluated to separate the illicit drug mixtures: Hypersil GOLD, Hypersil GOLD aq and Hypersil GOLD PFP (Figure 1). The UHPLC method with each column type was optimized individually. Hypersil GOLD aq, a polar endcapped C18 phase which offers more retention of polar compounds, did not resolve the early eluting compounds including methamphetamine, oxycodone, caffeine, MDMA and hydrocodone. 3 The separation on Hypersil GOLD aq may have been impaired by interactions between the polar endcapped stationary phase and the polar analytes. Hypersil GOLD, with LI or C18 selectivity, showed improved selectivity for all analytes except caffeine (peak 1) and oxycodone (peak 7). Hypersil GOLD uses highly pure silica and endcapping procedure to minimize unwanted interactions between analytes and the acidic silanols of the silica support. Hypersil GOLD PFP enabled the optimal separation of all 14 analytes by improving the resolution of the earlier eluting compounds. Hypersil GOLD PFP introduces a fluorine group into the stationary phase to improve selectivity towards halogenated compounds, as well as polar compounds containing hydroxyl, carboxyl, nitro or other polar groups. 3 3. Separations using Acetic Acid and Trifluoroacetic Acid (TFA) as Eluent Modifier Trifluoroacetic acid, formic acid and acetic acid can be added into the mobile phase to generate differences in selectivity. Separation of 14 illicit drugs on a Hypersil GOLD PFP column was evaluated by using either trifluoroacetic acid, formic acid or acetic acid as eluent modifier. The separation method with 0.02% TFA (Figure 2A) provided fast separation performance with good resolution and sharp peaks. However, the use of TFA is generally not recommended with MS detection due to its effect on signal suppression. All of the analytes are well resolved with 0.1% formic acid as modifier (Figure 1C), but only when 100% water is used at the beginning of the gradient method (Method C). Prolonged use of 100% water may degrade the stationary phase and shorten the column lifetime, so gradient method C is not suited for routine use. Most of the analytes are well separated with adequate resolution using 0.06% acetic acid as eluent modifier (Figure 2B). However, under such conditions, a few pairs of compounds, such as oxycodone and methamphetamine (peaks 7 & 6), hydrocodone and 3, 4-MDMA (peaks 5 & 8), cocaine and noscapine (peaks 10 & 11), are not baseline resolved. 4. Separations with Hybrid Column Phases Three hybrid stationary phases were evaluated after connecting different stationary phase columns in series: Figure 3A: 50 x 2.1 mm Hypersil GOLD + 50 x 2.1 mm Hypersil GOLD PFP Figure 3B: 50 x 2.1 mm Hypersil GOLD PFP + 50 x 2.1 mm Hypersil GOLD Figure 3C: 100 x 2.1 mm Hypersil GOLD PFP + 20 x 2.1 mm Hypersil GOLD Separations of 14 illicit drugs with these three hybrid stationary phases demonstrated great variation in selectivity. In general, the hybrid column phases improved selectivity between THC and cannabinol, cocaine and noscapine, but reduced selectivity between earlier eluting compounds, such as oxycodone, MA, hydrocodone and MDMA, compared with the Hypersil GOLD PFP phase. 5. Separation with Ternary Gradient The separation of the drug mixtures was dramatically improved by using three solvents: water, acetonitrile and methanol (Figure 4). Baseline resolution of all 14 drugs was achieved. Methanol, a weaker eluent compared with acetonitrile, provided better resolution for most of the analytes. However, the flow rate had to be reduced to accommodate high column backpressure caused by the high viscosity of methanol. Adding acetonitrile reduced the column backpressure so as to maintain the same separation speed.

Figure 1: Comparison of 1.9 µm Hypersil GOLD stationary phases for the UHPLC separation of 14 illicit drugs. A) Hypersil GOLD aq, Method A was applied; B) Hypersil GOLD, Method B was applied; C) Hypersil GOLD PFP, Method C was applied. See Appendix A for methods details. 6. Calibration Curve and Sensitivity Calibration curves for the drug standards were constructed over the concentration range listed in Table 1 with 10 calibration levels (Figure 5). Each calibration level was injected three times and the mean area responses were plotted against the concentrations. Correlation coefficients with R 2 = 0.995 or better were achieved for all illicit drug compounds. The limit of quantitation (LOQ) and the limit of detection (LOD) of the drug compounds were determined based on the calibration curve of signal-to-noise ratio versus concentration and the definitions of LOQ and LOD using s/n = 10 and 3, respectively. LOQs for all drugs were in the range of 0.96-300 ng/ml, while LODs were from 0.29 to 90.0 ng/ml (Table 1). The outstanding sensitivity by this method was highlighted by the achievement of picogram level quantitation for 10 illicit drugs with 1 µl sample injection. LOQ LOD Linear Range Analyte (ng/ml) (ng/ml) (ng/ml) ephedrine 1.21 0.36 1.3-2000 pseudoephedrine 1.25 0.38 1.3-1670 amphetamine 1.78 0.53 1.3-1670 methamphetamine 0.96 0.29 1.3-1670 3,4-MDMA 1.09 0.33 1.3-1670 hydrocodone 6.80 2.04 4.1-10000 oxycodone 3.48 1.04 3.3-10000 clonazepam 7.39 2.22 3.3-3000 cocaine 1.17 0.35 0.3-1000 noscapine 3.79 1.14 0.7-10000 cannabidiol 300 90.0 274-44400 cannabinol 251 75.4 123-20000 THC 191 57.4 68.5-11100 Table 1: LOQ and LOD of the thirteen drug compounds with 1 µl sample injection. Figure 2: UHPLC/MS chromatograms of the 14 illicit drugs with acidic solvent modifiers. A) 0.02%TFA (Method D); B) 0.06% acetic acid (Method E). See Appendix A for methods details.

Conclusions Fourteen illicit drugs and metabolites are baseline separated in twelve minutes by employing UHPLC/MS with a ternary solvent gradient. Various selectivities are achieved by different column surface chemistry, acidic solvent modifier and eluent system. These results are useful for method developments of drug identification and quantitation. Detection by single quadrupole MS at the ppb (ng/ml) level is more than sufficient to identify and quantify illicit drugs in real samples. References 1. C. Koeppel and J. Tenczer: Scope and limitations of a general unknown screening by gas chromatography-mass spectrometry in acute poisoning. J. Am Soc. Mass Spectrom. 1995, 6, 995 1003. 2. W. Weinmann, A. Wiedemann, B. Eppinger, M. Renz and M. Svoboda: Screening for drugs in serum by electrospray ionization/collisioninduced dissociation and library searching. J. Am Soc Mass Spectrom. 1999, 10, 1028 1037. 3. Catalog, Chromatography Columns and Consumables, 08 09, Thermo Scientific, page 72 82. Figure 3: Comparison of hybrid stationary phase chemistry for the separation of 14 illicit drugs. A) 50 x 2.1 mm Hypersil GOLD + 50 x 2.1 mm Hypersil GOLD PFP, Method F; B) 50 x 2.1 mm Hypersil GOLD PFP + 50 x 2.1 mm Hypersil GOLD, Method G; C) 100 x 2.1 mm Hypersil GOLD PFP + 20 x 2.1 mm Hypersil GOLD, Method H. See Appendix A for method details. Figure 4: Optimized UHPLC/MS separation of 14 illicit drugs with ternary gradient, listed in Method I.

Figure 5: Calibration curves for illicit drugs.

Appendix A In addition to these offices, Thermo Fisher Method A Method D Method G Scientific maintains Column: Hypersil GOLD aq, 1.9 µm, 100 x 2.1 mm A: Water, 0.1% FA B: Acetonitrile, 0.1% FA Flow Rate: 750 µl/min 6.00 2.0 12.00 95.0 14.00 95.0 14.10 2.0 16.00 2.0 Method B Column: Hypersil GOLD, 1.9 µm, 100 x 2.1 mm A: Water, 0.1% FA B: Acetonitrile, 0.1% FA 0.00 1.0 6.00 1.0 12.00 95.0 14.00 95.0 14.10 1.0 16.00 1.0 Method C Column: Hypersil GOLD PFP, 1.9 µm, 100 x 2.1 mm A: Water, 0.1% FA B: Acetonitrile, 0.1% FA 0.00 0.0 6.00 0.0 10.00 30.0 14.00 60.0 14.10 0.0 16.00 0.0 Column: Hypersil GOLD PFP, 1.9 µm, 100 x 2.1mm A: Water, 0.02% TFA B: Acetonitrile, 0.02% TFA 2.80 10.0 4.00 55.0 4.50 60.0 5.00 60.0 5.10 95.0 5.70 95.0 5.80 2.0 8.00 2.0 Method E Column: Hypersil GOLD PFP, 1.9 µm, 100 x 2.1 mm 5.00 20.0 5.10 50.0 7.00 60.0 8.60 95.0 9.90 95.0 1 12.00 2.0 Method F Hypersil GOLD, 1.9 µm, 50 x 2.1 mm Hypersil GOLD PFP, 1.9 µm, 50 x 2.1 mm 5.00 20.0 5.10 50.0 7.00 60.0 8.60 95.0 10.0 95.0 10.10 2.0 12.00 2.0 Hypersil GOLD PFP, 1.9 µm, 50 x 2.1mm Hypersil GOLD, 1.9 µm, 50 x 2.1 mm 0.00 1.5 3.00 5.0 4.50 25.0 6.00 65.0 9.50 95.0 10.0 95.0 10.10 1.5 12.00 1.5 Method H Hypersil GOLD PFP, 1.9 µm, 100 x 2.1 mm Hypersil GOLD, 1.9 µm, 20 x 2.1 mm 10.00 95.0 11.00 95.0 11.10 2.0 12.00 2.0 a network of representative organizations throughout the world. Africa +43 1 333 5034 127 Australia +61 2 8844 9500 Austria +43 1 333 50340 Belgium +32 2 482 30 30 Canada +1 800 530 8447 China +86 10 8419 3588 Denmark +45 70 23 62 60 Europe-Other +43 1 333 5034 127 France +33 1 60 92 48 00 Germany +49 6103 408 1014 India +91 22 6742 9434 Italy +39 02 950 591 Japan +81 45 453 9100 Latin America +1 608 276 5659 Middle East +43 1 333 5034 127 Netherlands +31 76 579 55 55 South Africa +27 11 570 1840 Spain +34 914 845 965 Sweden/Norway/ Finland +46 8 556 468 00 Switzerland +41 61 48784 00 UK +44 1442 233555 USA +1 800 532 4752 www.thermo.com Legal Notices 2008 Thermo Fisher Scientific Inc. All rights reserved. All trademarks are the property of Thermo Fisher Scientific Inc. and its subsidiaries. This information is presented as an example of the capabilities of Thermo Fisher Scientific Inc. products. It is not intended to encourage use of these products in any manners that might infringe the intellectual property rights of others. Specifications, terms and pricing are subject to change. Not all products are available in all countries. Please consult your local sales representative for details. View additional Thermo Scientific LC/MS application notes at: www.thermo.com/appnotes Thermo Fisher Scientific, San Jose, CA USA is ISO Certified. AN62904_E 10/08M Part of Thermo Fisher Scientific