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      Ionization Suppression and Recovery in Direct Biofluid Analysis Using Paper Spray Mass Spectrometry

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          Abstract

          Paper spray mass spectrometry is a method for the direct analysis of biofluid samples in which extraction of analytes from dried biofluid spots and electrospray ionization occur from the paper on which the dried sample is stored. We examined matrix effects in the analysis of small molecule drugs from urine, plasma, and whole blood. The general method was to spike stable isotope labeled analogs of each analyte into the spray solvent, while the analyte itself was in the dried biofluid. Intensity of the labeled analog is proportional to ionization efficiency, whereas the ratio of the analyte intensity to the labeled analog in the spray solvent is proportional to recovery. Ion suppression and recovery were found to be compound- and matrix-dependent. Highest levels of ion suppression were obtained for poor ionizers (e.g., analytes lacking basic aliphatic amine groups) in urine and approached -90%. Ion suppression was much lower or even absent for good ionizers (analytes with aliphatic amines) in dried blood spots. Recovery was generally highest in urine and lowest in blood. We also examined the effect of two experimental parameters on ion suppression and recovery: the spray solvent and the sample position (how far away from the paper tip the dried sample was spotted). Finally, the change in ion suppression and analyte elution as a function of time was examined by carrying out a paper spray analysis of dried plasma spots for 5 min by continually replenishing the spray solvent. Graphical Abstract ᅟ.

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          Author and article information

          Journal
          Journal of The American Society for Mass Spectrometry
          J. Am. Soc. Mass Spectrom.
          Springer Science and Business Media LLC
          1044-0305
          1879-1123
          April 2016
          January 4 2016
          April 2016
          : 27
          : 4
          : 726-734
          Article
          10.1007/s13361-015-1322-8
          26729455
          6b29ac2b-58b1-437f-be33-8a324f7c3214
          © 2016

          http://www.springer.com/tdm

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