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Diagnostic accuracy of MALDI mass spectrometric analysis of unfractionated serum in lung cancer

  • Pinar B. Yildiz
  • , Yu Shyr
  • , Jamshedur S.M. Rahman
  • , Noel R. Wardwell
  • , Lisa J. Zimmerman
  • , Bashar Shakhtour
  • , William H. Gray
  • , Shuo Chen
  • , Ming Li
  • , Heinrich Roder
  • , Daniel C. Liebler
  • , William L. Bigbee
  • , Jill M. Siegfried
  • , Joel L. Weissfeld
  • , Adriana L. Gonzalez
  • , Mathew Ninan
  • , David H. Johnson
  • , David P. Carbone
  • , Richard M. Caprioli
  • , Pierre P. Massion

Research output: Contribution to journalArticlepeer-review

Abstract

PURPOSE: There is a critical need for improvements in the noninvasive diagnosis of lung cancer. We hypothesized that matrix-assisted laser desorption ionization mass spectrometry (MALDI MS) analysis of the most abundant peptides in the serum may distinguish lung cancer cases from matched controls. PATIENTS AND METHODS: We used MALDI MS to analyze unfractionated serum from a total of 288 cases and matched controls split into training (n = 182) and test sets (n = 106). We used a training-testing paradigm with application of the model profile defined in a training set to a blinded test cohort. RESULTS: Reproducibility and lack of analytical bias was confirmed in quality-control studies. A serum proteomic signature of seven features in the training set reached an overall accuracy of 78%, a sensitivity of 67.4%, and a specificity of 88.9%. In the blinded test set, this signature reached an overall accuracy of 72.6 %, a sensitivity of 58%, and a specificity of 85.7%. The serum signature was associated with the diagnosis of lung cancer independently of gender, smoking status, smoking pack-years, and C-reactive protein levels. From this signature, we identified three discriminatory features as members of a cluster of truncated forms of serum amyloid A. CONCLUSIONS: We found a serum proteomic profile that discriminates lung cancer from matched controls. Proteomic analysis of unfractionated serum may have a role in the noninvasive diagnosis of lung cancer and will require methodological refinements and prospective validation to achieve clinical utility.

Original languageEnglish (US)
Pages (from-to)893-901
Number of pages9
JournalJournal of Thoracic Oncology
Volume2
Issue number10
DOIs
StatePublished - Oct 2007

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Biomarker
  • Blood
  • Diagnosis
  • Mass spectrometry

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