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Patient-level proteomic network prediction by explainable artificial intelligence

Medicine and Health

Patient-level proteomic network prediction by explainable artificial intelligence

P. Keyl, M. Bockmayr, et al.

This research introduces a groundbreaking explainable AI method, layer-wise relevance propagation (LRP), developed by Philipp Keyl and colleagues. It successfully infers patient-specific protein interaction networks from proteomic data, offering promising advancements in predictive diagnostics and personalized cancer treatment.... show more
Abstract
Understanding the pathological properties of dysregulated protein networks in individual patients’ tumors is the basis for precision therapy. Functional experiments are commonly used, but cover only parts of the oncogenic signaling networks, whereas methods that reconstruct networks from omics data usually only predict average network features across tumors. Here, we show that the explainable AI method layer-wise relevance propagation (LRP) can infer protein interaction networks for individual patients from proteomic profiling data. LRP reconstructs average and individual interaction networks with an AUC of 0.99 and 0.93, respectively, and outperforms state-of-the-art network prediction methods for individual tumors. Using data from The Cancer Proteome Atlas, we identify known and potentially novel oncogenic network features, among which some are cancer-type specific and show only minor variation among patients, while others are present across certain tumor types but differ among individual patients. Our approach may therefore support predictive diagnostics in precision oncology by inferring “patient-level” oncogenic mechanisms.
Publisher
npj Precision Oncology
Published On
Jun 07, 2022
Authors
Philipp Keyl, Michael Bockmayr, Daniel Heim, Gabriel Dernbach, Grégoire Montavon, Klaus-Robert Müller, Frederick Klauschen
Tags
explainable AI
layer-wise relevance propagation
patient-specific networks
proteomic profiling
precision oncology
cancer diagnostics
interaction networks
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