Proteomic analysis of the urothelial cancer landscape

Author:

Dressler Franz F.ORCID,Diedrichs FalkORCID,Sabtan Deema,Hinrichs Sofie,Krisp ChristophORCID,Gemoll Timo,Hennig Martin,Mackedanz Paulina,Schlotfeldt MareileORCID,Voß Hannah,Offermann Anne,Kirfel Jutta,Roesch Marie C.,Struck Julian P.,Kramer Mario W.,Merseburger Axel S.,Gratzke Christian,Schoeb Dominik S.,Miernik ArkadiuszORCID,Schlüter HartmutORCID,Wetterauer Ulrich,Zubarev RomanORCID,Perner Sven,Wolf PhilippORCID,Végvári ÁkosORCID

Abstract

AbstractUrothelial bladder cancer (UC) has a wide tumor biological spectrum with challenging prognostic stratification and relevant therapy-associated morbidity. Most molecular classifications relate only indirectly to the therapeutically relevant protein level. We improve the pre-analytics of clinical samples for proteome analyses and characterize a cohort of 434 samples with 242 tumors and 192 paired normal mucosae covering the full range of UC. We evaluate sample-wise tumor specificity and rank biomarkers by target relevance. We identify robust proteomic subtypes with prognostic information independent from histopathological groups. In silico drug prediction suggests efficacy of several compounds hitherto not in clinical use. Both in silico and in vitro data indicate predictive value of the proteomic clusters for these drugs. We underline that proteomics is relevant for personalized oncology and provide abundance and tumor specificity data for a large part of the UC proteome (www.cancerproteins.org).

Funder

Else Kröner-Fresenius-Stiftung

Publisher

Springer Science and Business Media LLC

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