Extracellular Matrix Sulfation in the Tumor Microenvironment Stimulates Cancer Stemness and Invasiveness

Author:

Kuşoğlu Alican123,Örnek Deniz123,Dansık Aslı124,Uzun Ceren4,Nur Özkan Sena123,Sarıca Sevgi123,Yangın Kardelen123,Özdinç Şevval123,Sorhun Duygu Turan123,Solcan Nuriye14,Doğanalp Efe Can12,Arlov Øystein5,Cunningham Katherine6,Karaoğlu Ismail C.7,Kizilel Seda27,Solaroğlu Ihsan28,Bulutay Pınar9,Fırat Pınar9,Erus Suat10,Tanju Serhan10,Dilege Şükrü10,Vunjak‐Novakovic Gordana6,Tuncbag Nurcan2711,Öztürk Ece1211ORCID

Affiliation:

1. Engineered Cancer and Organ Models Laboratory Koç University Istanbul 34450 Turkey

2. Research Center for Translational Medicine (KUTTAM) Koç University Istanbul 34450 Turkey

3. Graduate School of Health Sciences Koç University Istanbul 34450 Turkey

4. Graduate School of Sciences and Engineering Koç University Istanbul 34450 Turkey

5. Department of Biotechnology and Nanomedicine SINTEF Industry Trondheim 7034 Norway

6. Department of Biomedical Engineering Columbia University New York NY 10027 USA

7. Chemical and Biological Engineering Koç University Istanbul 34450 Turkey

8. Department of Neurosurgery School of Medicine Koç University Istanbul 34450 Turkey

9. Department of Pathology School of Medicine Koç University Istanbul 34450 Turkey

10. Department of Thoracic Surgery School of Medicine Koç University Istanbul 34450 Turkey

11. Department of Medical Biology School of Medicine Koç University Istanbul 34450 Turkey

Abstract

AbstractTumor extracellular matrices (ECM) exhibit aberrant changes in composition and mechanics compared to normal tissues. Proteoglycans (PG) are vital regulators of cellular signaling in the ECM with the ability to modulate receptor tyrosine kinase (RTK) activation via their sulfated glycosaminoglycan (sGAG) side chains. However, their role on tumor cell behavior is controversial. Here, it is demonstrated that PGs are heavily expressed in lung adenocarcinoma (LUAD) patients in correlation with invasive phenotype and poor prognosis. A bioengineered human lung tumor model that recapitulates the increase of sGAGs in tumors in an organotypic matrix with independent control of stiffness, viscoelasticity, ligand density, and porosity, is developed. This model reveals that increased sulfation stimulates extensive proliferation, epithelial‐mesenchymal transition (EMT), and stemness in cancer cells. The focal adhesion kinase (FAK)‐phosphatidylinositol 3‐kinase (PI3K) signaling axis is identified as a mediator of sulfation‐induced molecular changes in cells upon activation of a distinct set of RTKs within tumor‐mimetic hydrogels. The study shows that the transcriptomic landscape of tumor cells in response to increased sulfation resembles native PG‐rich patient tumors by employing integrative omics and network modeling approaches.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

H2020 Marie Skłodowska-Curie Actions

Publisher

Wiley

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