Machine learning-assisted elucidation of CD81–CD44 interactions in promoting cancer stemness and extracellular vesicle integrity

Author:

Ramos Erika K12ORCID,Tsai Chia-Feng3ORCID,Jia Yuzhi1,Cao Yue4,Manu Megan1,Taftaf Rokana12,Hoffmann Andrew D1ORCID,El-Shennawy Lamiaa1,Gritsenko Marina A3ORCID,Adorno-Cruz Valery1,Schuster Emma J12,Scholten David12,Patel Dhwani1ORCID,Liu Xia15,Patel Priyam6ORCID,Wray Brian6,Zhang Youbin7,Zhang Shanshan8,Moore Ronald J3ORCID,Mathews Jeremy V8,Schipma Matthew J6ORCID,Liu Tao3ORCID,Tokars Valerie L1ORCID,Cristofanilli Massimo79,Shi Tujin3,Shen Yang4ORCID,Dashzeveg Nurmaa K1ORCID,Liu Huiping179ORCID

Affiliation:

1. Department of Pharmacology, Northwestern University

2. Driskill Graduate Program in Life Science, Feinberg School of Medicine, Northwestern University

3. Biological Sciences Division, Pacific Northwest National Laboratory

4. Department of Electrical and Computer Engineering, TEES-AgriLife Center for Bioinformatics and Genomic Systems Engineering, Texas A&M University

5. Department of Toxicology and Cancer Biology, University of Kentucky

6. Quantitative Data Science Core, Center for Genetic Medicine, Northwestern University Feinberg School of Medicine

7. Department of Medicine, Hematology/Oncology Division, Feinberg School of Medicine, Northwestern University

8. Pathology Core Facility, Northwestern University

9. Robert H. Lurie Comprehensive Cancer Center, Feinberg School of Medicine, Northwestern University

Abstract

Tumor-initiating cells with reprogramming plasticity or stem-progenitor cell properties (stemness) are thought to be essential for cancer development and metastatic regeneration in many cancers; however, elucidation of the underlying molecular network and pathways remains demanding. Combining machine learning and experimental investigation, here we report CD81, a tetraspanin transmembrane protein known to be enriched in extracellular vesicles (EVs), as a newly identified driver of breast cancer stemness and metastasis. Using protein structure modeling and interface prediction-guided mutagenesis, we demonstrate that membrane CD81 interacts with CD44 through their extracellular regions in promoting tumor cell cluster formation and lung metastasis of triple negative breast cancer (TNBC) in human and mouse models. In-depth global and phosphoproteomic analyses of tumor cells deficient with CD81 or CD44 unveils endocytosis-related pathway alterations, leading to further identification of a quality-keeping role of CD44 and CD81 in EV secretion as well as in EV-associated stemness-promoting function. CD81 is coexpressed along with CD44 in human circulating tumor cells (CTCs) and enriched in clustered CTCs that promote cancer stemness and metastasis, supporting the clinical significance of CD81 in association with patient outcomes. Our study highlights machine learning as a powerful tool in facilitating the molecular understanding of new molecular targets in regulating stemness and metastasis of TNBC.

Funder

National Cancer Institute

National Institute of General Medical Sciences

U.S. Department of Defense

Susan G. Komen

American Cancer Society

National Science Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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