Artificial Intelligence-Assisted Processing of Anterior Segment OCT Images in the Diagnosis of Vitreoretinal Lymphoma

Author:

Gozzi Fabrizio1ORCID,Bertolini Marco2ORCID,Gentile Pietro13,Verzellesi Laura2ORCID,Trojani Valeria2ORCID,De Simone Luca1ORCID,Bolletta Elena1ORCID,Mastrofilippo Valentina1,Farnetti Enrico4,Nicoli Davide4,Croci Stefania5ORCID,Belloni Lucia5,Zerbini Alessandro5,Adani Chantal1ORCID,De Maria Michele6,Kosmarikou Areti6,Vecchi Marco6,Invernizzi Alessandro78,Ilariucci Fiorella9,Zanelli Magda10ORCID,Iori Mauro2ORCID,Cimino Luca111ORCID

Affiliation:

1. Ocular Immunology Unit, Azienda USL-IRCCS, 42123 Reggio Emilia, Italy

2. Medical Physics Unit, Azienda USL-IRCCS, 42123 Reggio Emilia, Italy

3. Clinical and Experimental Medicine Ph.D. Program, University of Modena and Reggio Emilia, 41125 Modena, Italy

4. Molecular Pathology Unit, Azienda USL-IRCCS, 42123 Reggio Emilia, Italy

5. Clinical Immunology, Allergy and Advanced Biotechnologies Unit, Azienda USL-IRCCS, 42123 Reggio Emilia, Italy

6. Ophthalmology Unit, Azienda USL-IRCCS, 42123 Reggio Emilia, Italy

7. Eye Clinic, Luigi Sacco Hospital, Department of Biomedical and Clinical Science, University of Milan, 20157 Milan, Italy

8. Faculty of Health and Medicine, Save Sight Institute, University of Sydney, Sydney, NSW 2000, Australia

9. Hematology Unit, Azienda USL-IRCCS, 42123 Reggio Emilia, Italy

10. Surgical Oncology Unit, Azienda USL-IRCCS di Reggio Emilia, 42123 Reggio Emilia, Italy

11. Department of Surgery, Medicine, Dentistry and Morphological Sciences, with Interest in Transplants, Oncology and Regenerative Medicine, University of Modena and Reggio Emilia, 41124 Modena, Italy

Abstract

Anterior segment optical coherence tomography (AS-OCT) allows the explore not only the anterior chamber but also the front part of the vitreous cavity. Our cross-sectional single-centre study investigated whether AS-OCT can distinguish between vitreous involvement due to vitreoretinal lymphoma (VRL) and vitritis in uveitis. We studied AS-OCT images from 28 patients (11 with biopsy-proven VRL and 17 with differential diagnosis uveitis) using publicly available radiomics software written in MATLAB. Patients were divided into two balanced groups: training and testing. Overall, 3260/3705 (88%) AS-OCT images met our defined quality criteria, making them eligible for analysis. We studied five different sets of grey-level samplings (16, 32, 64, 128, and 256 levels), finding that 128 grey levels performed the best. We selected the five most effective radiomic features ranked by the ability to predict the class (VRL or uveitis). We built a classification model using the xgboost python function; through our model, 87% of eyes were correctly diagnosed as VRL or uveitis, regardless of exam technique or lens status. Areas under the receiver operating characteristic curves (AUC) in the 128 grey-level model were 0.95 [CI 0.94, 0.96] and 0.84 for training and testing datasets, respectively. This preliminary retrospective study highlights how AS-OCT can support ophthalmologists when there is clinical suspicion of VRL.

Funder

Italian Ministry of Health—Ricerca Corrente Annual Program 2024

Publisher

MDPI AG

Subject

Clinical Biochemistry

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