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Lack of reproducibility of histopathological features in MYC-rearranged large B cell lymphoma using digital whole slide images: a study from the Lunenburg lymphoma biomarker consortium.

Yasodha NatkunamDaphne de JongPedro FarinhaPhilippe GaulardWolfram KlapperAndreas RosenwaldBirgitta SanderReuben ToozeRanjana AdvaniCatherine BurtonJohn G GribbenMarie-José KerstenEva KimbyGeorg LenzThierry MolinaFranck MorschhauserDavid ScottLaurie SehnWendy StevensAndrew ClearMaryse BaiaAbdelmalek HabiMad-Helenie ElsensohnCarole Langlois-JacquesDelphine Maucort-BoulchMaria Calaminici
Published in: Histopathology (2023)
Our findings indicate that there are no specific conventional morphological parameters that help to subclassify MYC-rearranged LBCL or select cases for FISH analysis, and that incorporation of FISH data is essential for accurate classification and prognostication.
Keyphrases
  • deep learning
  • diffuse large b cell lymphoma
  • transcription factor
  • machine learning
  • electronic health record
  • convolutional neural network
  • optical coherence tomography
  • high resolution