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Versatile Mass Spectrometry-Based Intraoperative Diagnosis of Liver Tumor in a Multiethnic Cohort

  • Silvia Giordano
  • , Angela Marika Siciliano
  • , Matteo Donadon
  • , Cristiana Soldani
  • , Barbara Franceschini
  • , Ana Lleo
  • , Luca Di Tommaso
  • , Matteo Cimino
  • , Guido Torzilli
  • , Hidekazu Saiki
  • , Hiroki Nakajima
  • , Sen Takeda
  • , Enrico Davoli
  • Shimadzu Italia
  • IRCCS Istituto di ricerche farmacologiche Mario Negri - Milano, Bergamo, Ranica
  • Humanitas University
  • IRCCS Istituto Clinico Humanitas - Rozzano (Milano)
  • Shimadzu Corporation

研究成果: ジャーナルへの寄稿記事査読

6 被引用数 (Scopus)

抄録

Currently used techniques for intraoperative assessment of tumor resection margins are time-consuming and laborious and, more importantly, lack specificity. Moreover, pathological diagnosis during surgery does not often give a clear outcome. Recent advances in mass spectrometry (MS) and instrumentation have made it possible to obtain detailed molecular information from tissue specimens in real-time, with minimal sample pre-treatment. Probe Electro Spray Ionization MS (PESI-MS), combined with artificial intelligence (AI), has demonstrated its effectiveness in distinguishing liver cancer tissues from healthy tissues in a large Italian population group. As the MS profile can reflect the patient’s ethnicity, dietary habits, or particular operating room procedures, the AI algorithm must be well trained to distinguish different groups. We used a large dataset composed of liver tumor and healthy specimens, from the Italian and Japanese populations, to develop a versatile algorithm free from ethnic bias. The system can classify tissues with discrepancies <5% from the pathologist’s diagnosis. These results demonstrate the potential of the PESI-MS system to distinguish tumor from surrounding non-tumor tissues in patients, with minimal bias from race/ethnicity or etiological characteristics or operating room procedures.

本文言語英語
論文番号4244
ジャーナルApplied Sciences (Switzerland)
12
9
DOI
出版ステータス出版済み - 1 5月 2022

UN SDG

この成果は、次の持続可能な開発目標に貢献しています

  1. SDG 3 - すべての人に健康と福祉を
    SDG 3 すべての人に健康と福祉を

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