Integrating AI-Powered Digital Pathology and Imaging Mass Cytometry Identifies Key Classifiers of Tumor Cells, Stroma, and Immune Cells in Non–Small Cell Lung Cancer

Author:

Rigamonti Alessandra12ORCID,Viatore Marika12ORCID,Polidori Rebecca12ORCID,Rahal Daoud3ORCID,Erreni Marco45ORCID,Fumagalli Maria Rita4ORCID,Zanini Damiano4ORCID,Doni Andrea4ORCID,Putignano Anna Rita1ORCID,Bossi Paola3ORCID,Voulaz Emanuele56ORCID,Alloisio Marco6ORCID,Rossi Sabrina7ORCID,Zucali Paolo Andrea57ORCID,Santoro Armando57ORCID,Balzano Vittoria8ORCID,Nisticò Paola8ORCID,Feuerhake Friedrich9ORCID,Mantovani Alberto1510ORCID,Locati Massimo12ORCID,Marchesi Federica12ORCID

Affiliation:

1. 1Department of Immunology and Inflammation, IRCCS Humanitas Research Hospital; Rozzano (Milan), Italy.

2. 2Department of Medical Biotechnology and Translational Medicine, University of Milan; Milan, Italy.

3. 3Department of Pathology, IRCCS Humanitas Research Hospital; Rozzano (Milan), Italy.

4. 4Unit of Advanced Optical Microscopy, IRCCS Humanitas Research Hospital, Rozzano, Milan, Italy.

5. 5Department of Biomedical Science, Humanitas University, Pieve Emanuele, Milan, Italy.

6. 6Division of Thoracic Surgery, IRCCS Humanitas Research Hospital, Rozzano (Milan), Italy.

7. 7Medical Oncology and Hematology Unit, IRCCS Humanitas Research Hospital, Rozzano (Milan), Italy.

8. 8Immunology and Immunotherapy Unit, IRCCS Regina Elena National Cancer Institute, Rome, Italy.

9. 9Institute for Neuropathology, University Clinic Freiburg, Freiburg, Germany.

10. 10The William Harvey Research Institute, Queen Mary University of London, London, United Kingdom.

Abstract

Abstract Artificial intelligence (AI)–powered approaches are becoming increasingly used as histopathologic tools to extract subvisual features and improve diagnostic workflows. On the other hand, hi-plex approaches are widely adopted to analyze the immune ecosystem in tumor specimens. Here, we aimed at combining AI-aided histopathology and imaging mass cytometry (IMC) to analyze the ecosystem of non–small cell lung cancer (NSCLC). An AI-based approach was used on hematoxylin and eosin (H&E) sections from 158 NSCLC specimens to accurately identify tumor cells, both adenocarcinoma and squamous carcinoma cells, and to generate a classifier of tumor cell spatial clustering. Consecutive tissue sections were stained with metal-labeled antibodies and processed through the IMC workflow, allowing quantitative detection of 24 markers related to tumor cells, tissue architecture, CD45+ myeloid and lymphoid cells, and immune activation. IMC identified 11 macrophage clusters that mainly localized in the stroma, except for S100A8+ cells, which infiltrated tumor nests. T cells were preferentially localized in peritumor areas or in tumor nests, the latter being associated with better prognosis, and they were more abundant in highly clustered tumors. Integrated tumor and immune classifiers were validated as prognostic on whole slides. In conclusion, integration of AI-powered H&E and multiparametric IMC allows investigation of spatial patterns and reveals tissue relevant features with clinical relevance. Significance: Leveraging artificial intelligence–powered H&E analysis integrated with hi-plex imaging mass cytometry provides insights into the tumor ecosystem and can translate tumor features into classifiers to predict prognosis, genotype, and therapy response.

Funder

Associazione italiana per la ricerca sul cancro

Ministero della salute-progetti di rete ACC

Ministero della Salute

Publisher

American Association for Cancer Research (AACR)

Reference53 articles.

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