Automated PD-L1 Scoring Using Artificial Intelligence in Head and Neck Squamous Cell Carcinoma.

PD-L1 scoring deep learning head and neck squamous cell carcinoma medical image analysis open-source tumor detection

Journal

Cancers
ISSN: 2072-6694
Titre abrégé: Cancers (Basel)
Pays: Switzerland
ID NLM: 101526829

Informations de publication

Date de publication:
31 Aug 2021
Historique:
received: 09 07 2021
revised: 24 08 2021
accepted: 26 08 2021
entrez: 10 9 2021
pubmed: 11 9 2021
medline: 11 9 2021
Statut: epublish

Résumé

Immune checkpoint inhibitors (ICI) represent a new therapeutic approach in recurrent and metastatic head and neck squamous cell carcinoma (HNSCC). The patient selection for the PD-1/PD-L1 inhibitor therapy is based on the degree of PD-L1 expression in immunohistochemistry reflected by manually determined PD-L1 scores. However, manual scoring shows variability between different investigators and is influenced by cognitive and visual traps and could therefore negatively influence treatment decisions. Automated PD-L1 scoring could facilitate reliable and reproducible results. Our novel approach uses three neural networks sequentially applied for fully automated PD-L1 scoring of all three established PD-L1 scores: tumor proportion score (TPS), combined positive score (CPS) and tumor-infiltrating immune cell score (ICS). Our approach was validated using WSIs of HNSCC cases and compared with manual PD-L1 scoring by human investigators. The inter-rater correlation (ICC) between human and machine was very similar to the human-human correlation. The ICC was slightly higher between human-machine compared to human-human for the CPS and ICS, but a slightly lower for the TPS. Our study provides deeper insights into automated PD-L1 scoring by neural networks and its limitations. This may serve as a basis to improve ICI patient selection in the future.

Identifiants

pubmed: 34503218
pii: cancers13174409
doi: 10.3390/cancers13174409
pmc: PMC8431396
pii:
doi:

Types de publication

Journal Article

Langues

eng

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Auteurs

Behrus Puladi (B)

Department of Oral and Maxillofacial Surgery, University Hospital RWTH Aachen, 52074 Aachen, Germany.
Institute of Pathology, University Hospital RWTH Aachen, 52074 Aachen, Germany.
Institute of Medical Informatics, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Mark Ooms (M)

Department of Oral and Maxillofacial Surgery, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Svetlana Kintsler (S)

Institute of Pathology, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Khosrow Siamak Houschyar (KS)

Department of Dermatology and Allergology, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Florian Steib (F)

Institute of Pathology, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Ali Modabber (A)

Department of Oral and Maxillofacial Surgery, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Frank Hölzle (F)

Department of Oral and Maxillofacial Surgery, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Ruth Knüchel-Clarke (R)

Institute of Pathology, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Till Braunschweig (T)

Institute of Pathology, University Hospital RWTH Aachen, 52074 Aachen, Germany.

Classifications MeSH