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  4. Development of a Multiomics Database for Personalized Prognostic Forecasting in Head and Neck Cancer: The Big Data to Decide EU Project
 
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2021
Journal Article
Title

Development of a Multiomics Database for Personalized Prognostic Forecasting in Head and Neck Cancer: The Big Data to Decide EU Project

Abstract
Background
Despite advances in treatments, 30% to 50% of stage III-IV head and neck squamous cell carcinoma (HNSCC) patients relapse within 2 years after treatment. The Big Data to Decide (BD2Decide) project aimed to build a database for prognostic prediction modeling.
Methods
Stage III-IV HNSCC patients with locoregionally advanced HNSCC treated with curative intent (1537) were included. Whole transcriptomics and radiomics analyses were performed using pretreatment tumor samples and computed tomography/magnetic resonance imaging scans, respectively.
Results
The entire cohort was composed of 71% male (1097)and 29% female (440): oral cavity (429, 28%), oropharynx (624, 41%), larynx (314, 20%), and hypopharynx (170, 11%); median follow-up 50.5 months. Transcriptomics and imaging data were available for 1284 (83%) and 1239 (80%) cases, respectively; 1047 (68%) patients shared both.
Conclusions
This annotated database represents the HNSCC largest available repository and will enable to develop/validate a decision support system integrating multiscale data to explore through classical and machine learning models their prognostic role.
Author(s)
Cavalieri, Stefano
Fondazione IRCCS Istituto Nazionale dei Tumori di Milano
Cecco, L. de
Brakenhoff, R.H.
Serafini, M.S.
Canevari, S.
Rossi, S.
Lanfranco, D.
Hoebers, F.J.P.
Wesseling, F.W.R.
Keek, S.
Scheckenbach, K.
Mattavelli, D.
Hoffmann, T.
López Pérez, L.
Fico, G.
Bologna, M.
Nauta, I.
Leemans, C.R.
Trama, A.
Klausch, T.
Berkhof, J.H.
Tountopoulos, V.
Shefi, R.
Mainardi, L.
Mercalli, F.
Poli, T.
Licitra, L.
Wesarg, S.
Journal
Head and Neck  
Project(s)
BD2Decide  
Funder
European Commission EC  
DOI
10.1002/hed.26515
Additional link
Full text
Language
English
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Keyword(s)
  • Lead Topic: Individual Health

  • Research Line: Modeling (MOD)

  • Research Line: Machine Learning (ML)

  • Big Data

  • oral cancer

  • patient model

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