3D Non-Local Neural Network: A Non-Invasive Biomarker for Immunotherapy Treatment Outcome Prediction. Case-Study: Metastatic Urothelial Carcinoma.

3D-CNN immunotherapy radiomics self-attention

Journal

Journal of imaging
ISSN: 2313-433X
Titre abrégé: J Imaging
Pays: Switzerland
ID NLM: 101698819

Informations de publication

Date de publication:
03 Dec 2020
Historique:
received: 27 10 2020
revised: 28 11 2020
accepted: 01 12 2020
entrez: 30 8 2021
pubmed: 31 8 2021
medline: 31 8 2021
Statut: epublish

Résumé

Immunotherapy is regarded as one of the most significant breakthroughs in cancer treatment. Unfortunately, only a small percentage of patients respond properly to the treatment. Moreover, to date, there are no efficient bio-markers able to early discriminate the patients eligible for this treatment. In order to help overcome these limitations, an innovative non-invasive deep pipeline, integrating Computed Tomography (CT) imaging, is investigated for the prediction of a response to immunotherapy treatment. We report preliminary results collected as part of a case study in which we validated the implemented method on a clinical dataset of patients affected by Metastatic Urothelial Carcinoma. The proposed pipeline aims to discriminate patients with high chances of response from those with disease progression. Specifically, the authors propose ad-hoc 3D Deep Networks integrating Self-Attention mechanisms in order to estimate the immunotherapy treatment response from CT-scan images and such hemato-chemical data of the patients. The performance evaluation (average accuracy close to 92%) confirms the effectiveness of the proposed approach as an immunotherapy treatment response biomarker.

Identifiants

pubmed: 34460530
pii: jimaging6120133
doi: 10.3390/jimaging6120133
pmc: PMC8321180
pii:
doi:

Types de publication

Journal Article

Langues

eng

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Auteurs

Francesco Rundo (F)

STMicroelectronics-ADG Central R&D Division, 95125 Catania, Italy.

Giuseppe Luigi Banna (GL)

Medical Oncology Department, United Lincolnshire NHS Hospital Trust, Lincoln LN2, Lincolnshire, UK.

Luca Prezzavento (L)

DIEEI, University of Catania, 95125 Catania, Italy.

Francesca Trenta (F)

IPLAB, University of Catania, 95125 Catania, Italy.

Sabrina Conoci (S)

Department of Chemical, Biological, Pharmaceutical and Environmental Sciences, University of Messina, 98100 Messina, Italy.

Sebastiano Battiato (S)

IPLAB, University of Catania, 95125 Catania, Italy.

Classifications MeSH