Fundamentals of Analytical Toxicology. Robin Whelpton

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      The right of Robert J. Flanagan, Eva Cuypers, Hans H. Maurer and Robin Whelpton to be identified as the authors of this work has been asserted in accordance with law.

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       Library of Congress Cataloging-in-Publication Data

      Names: Flanagan, Robert J., author.

      Title: Fundamentals of analytical toxicology : clinical and forensic / Robert J. Flanagan, King's College Hospital NHS Found Trust, UK, Eva Cuypers, Mastricht University, The Netherlands, Hans H. Maurer, Department of Experimental and Clinical Toxicology, Saarland University, Germany, Robin Whelpton, Formerly School of Biological and Chemical Sciences, Queen Mary University of London, UK.

      Description: Second edition. | Hoboken, NJ : Wiley, 2020. | Includes bibliographical references and index.

      Identifiers: LCCN 2020007512 (print) | LCCN 2020007513 (ebook) | ISBN 9781119122340 (cloth) | ISBN 9781119122364 (adobe pdf) | ISBN 9781119122371 (epub)

      Subjects: LCSH: Analytical toxicology.

      Classification: LCC RA1221 .F86 2020 (print) | LCC RA1221 (ebook) | DDC 615.9/07–dc23

      LC record available at https://lccn.loc.gov/2020007512

      LC ebook record available at https://lccn.loc.gov/2020007513

      Cover Design: Wiley

      Cover Images: © Xuanyu Han/Getty Images, © Alexander Limbach/Shutterstock

      The analytical toxicologist may be required to detect, identify, and in many cases measure a wide variety of compounds in samples from almost any component of the body or in related materials such as residues in syringes or in soil. Many difficulties may be encountered. The analytes may include gases such as carbon monoxide, drugs, solvents, pesticides, metal salts, and naturally-occurring toxins. Some poisons may be individual chemicals and others complex mixtures. New drugs, pesticides, and other substances continually present novel challenges in analysis and in the interpretation of the results of the analysis. The analyte might be an endogenous compound such as acetone, or an exogenous compound such as a drug and/or metabolite(s) of the drug, whilst the sample matrix may range from urine to bone.

      Many biological samples contain muscle, connective tissue, and so forth, which may have to be separated or degraded prior to an analysis, as well as a multitude of small and large molecular weight compounds. The concentration of the analyte to be measured can range from g L–1 (parts per thousand) in the case of blood ethanol to μg L–1 (parts per thousand million) in the case of plasma digoxin, and even ng L–1 (parts per million million) in the case of the potent opioid carfentanil. The stability of the analytes in biological samples also varies considerably, ranging from a few minutes for protease sensitive peptides and esters such as aspirin and diamorphine, to several years for some other drugs and pesticides.

      A major difficulty in writing any textbook is deciding on the order of presentation. Having taken account not only of reviewer comments on the first edition, but also of the advances in analytical methods on the one hand, and the range of analyses that may now be required on the other, the material has been updated, expanded and presented in a new order. However, much of the discussion of the historical development of analytical toxicology present in the first edition has been removed to save space. On the other hand, some discussion of more traditional methods such as thin-layer chromatography has been retained for the simple reason that such methods are still used in many parts of the world.

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