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Deep learning improves pancreatic cancer diagnosis using rna-based variants

  • Ali Al-Fatlawi
  • , Negin Malekian
  • , Sebastián García
  • , Andreas Henschel
  • , Ilwook Kim
  • , Andreas Dahl
  • , Beatrix Jahnke
  • , Peter Bailey
  • , Sarah Naomi Bolz
  • , Anna R. Poetsch
  • , Sandra Mahler
  • , Robert Grützmann
  • , Christian Pilarsky
  • , Michael Schroeder
  • Dresden University of Technology
  • University Medical Center Dresden
  • Lehrstuhl für Mikrobiologie und Infektionsimmunologie
  • National Center for Tumor Diseases (NCT)

Research output: Contribution to journalArticlepeer-review

16 Scopus citations

Abstract

For optimal pancreatic cancer treatment, early and accurate diagnosis is vital. Blood-derived biomarkers and genetic predispositions can contribute to early diagnosis, but they often have limited accuracy or applicability. Here, we seek to exploit the synergy between them by combining the biomarker CA19-9 with RNA-based variants. We use deep sequencing and deep learning to improve differentiating pancreatic cancer and chronic pancreatitis. We obtained samples of nucleated cells found in peripheral blood from 268 patients suffering from resectable, non-resectable pancreatic cancer, and chronic pancreatitis. We sequenced RNA with high coverage and obtained millions of variants. The high-quality variants served as input together with CA19-9 values to deep learning models. Our model achieved an area under the curve (AUC) of 96% in differentiating resectable cancer from pancreatitis using a test cohort. Moreover, we identified variants to estimate survival in resectable cancer. We show that the blood transcriptome harbours variants, which can substantially improve noninvasive clinical diagnosis.

Original languageBritish English
Article number2654
JournalCancers
Volume13
Issue number11
DOIs
StatePublished - 1 Jun 2021

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

  • Chronic pancreatitis
  • Deep learning
  • Pancreatic cancer
  • Transcriptome-wide association study

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