SYSTEMS AND METHODS FOR TREATING DIAGNOSING AND PREDICTING THE OCCURRENCE OF A MEDICAL CONDITION

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United States of America Patent

SERIAL NO

12449710

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Abstract

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Methods and systems are provided that use clinical information, molecular information and computer-generated morphometric information in a predictive model for predicting the occurrence (e.g., recurrence) of a medical condition, for example, cancer. In an embodiment, a model that predicts prostate cancer recurrence is provided, where the model is based on features including one or more (e.g., all) of biopsy Gleason score, seminal vesicle invasion, extracapsular extension, preoperative PSA, dominant prostatectomy Gleason grade, the relative area of AR+ epithelial nuclei, a morphometric measurement of epithelial nuclei, and a morphometric measurement of epithelial cytoplasm. In another embodiment, a model that predicts clinical failure post-prostatectomy is provided, wherein the model is based on features including one or more (e.g., all) of dominant prostatectomy Gleason grade, lymph node invasion status, one or more morphometric measurements of lumen, a morphometric measurement of cytoplasm, and average intensity of AR in AR+/AMACR− epithelial nuclei.

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Patent Owner(s)

Patent OwnerAddress
CHAMPALIMAUD FOUNDATIONAVENIDA BRASILIA LISBOA 1400-038

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Inventor(s)

Inventor Name Address # of filed Patents Total Citations
Saidi, Olivier Greenwich, US 12 556
Teverovskiy, Mikhail Harrison, US 9 446
Verbel, David A New York, US 9 357

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