Pan-cancer image-based detection of clinically actionable genetic alterations

Hermann Brenner, Peter Boor, Jakob Nikolas Kather, Lara R. Heij, Heike I. Grabsch, Chiara Maria Lavinia Loeffler, Amelie Echle, Hannah Sophie Muti, Jeremias Krause, Jan Niehues, Kai Sommer, Peter Bankhead, Loes Kooreman, Jefree J. Schulte, Nicole A. Cipriani, Roman D. Buelow, Nadina Ortiz‐Brüchle, Andrew M. Hanby, Valerie Speirs, Sara Kochanny, Akash Patnaik, Andrew Srisuwananukorn, Michael Hoffmeister, Piet A. van den Brandt, Dirk Jäger, Christian Trautwein, Alexander T. Pearson, Tom Luedde
2020-07-27

SCID:  54.1/zgfyz9tm
Molecular alterations in cancer can cause phenotypic changes in tumor cells and their micro-environment. Routine histopathology tissue slides - which are ubiquitously available - can reflect such morphological changes. Here, we show that deep learning can consistently infer a wide range of genetic mutations, molecular tumor subtypes, gene expression signatures and standard pathology biomarkers directly from routine histology. We developed, optimized, validated and publicly released a one-stop-shop workflow and applied it to tissue slides of more than 5000 patients across multiple solid tumors. Our findings show that a single deep learning algorithm can be trained to predict a wide range of molecular alterations from routine, paraffin-embedded histology slides stained with hematoxylin and eosin. These predictions generalize to other populations and are spatially resolved. Our method can be implemented on mobile hardware, potentially enabling point-of-care diagnostics for personalized cancer treatment. More generally, this approach could elucidate and quantify genotype-phenotype links in cancer.
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2020-07-27
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Hermann Brenner
Peter Boor
Jakob Nikolas Kather
Lara R. Heij
Heike I. Grabsch
Chiara Maria Lavinia Loeffler
Amelie Echle
Hannah Sophie Muti
Jeremias Krause
Jan Niehues
Kai Sommer
Peter Bankhead
Loes Kooreman
Jefree J. Schulte
Nicole A. Cipriani
Roman D. Buelow
Nadina Ortiz‐Brüchle
Andrew M. Hanby
Valerie Speirs
Sara Kochanny
Akash Patnaik
Andrew Srisuwananukorn
Michael Hoffmeister
Piet A. van den Brandt
Dirk Jäger
Christian Trautwein
Alexander T. Pearson
Tom Luedde
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