Attenuating Epithelial‐to‐Mesenchymal Transition in Cancer through Angiopoietin‐Like 4 Inhibition in a 3D Tumor Microenvironment Model

Author:

Liao Zehuan12,Lim Joseph Jing Heng1,Lee Jeannie Xue Ting3,Chua Damien3,Vos Marcus Ivan Gerard3,Yip Yun Sheng3,Too Choon Boon1,Cao Huan4,Wang Jun Kit4,Shou Yufeng56,Tay Andy567,Lehti Kaisa28,Cheng Hong Sheng3,Tay Chor Yong4,Tan Nguan Soon13ORCID

Affiliation:

1. School of Biological Sciences Nanyang Technological University Singapore 60 Nanyang Drive Singapore 637551 Singapore

2. Department of Microbiology Tumor and Cell Biology Karolinska Institutet Stockholm 17177 Sweden

3. Lee Kong Chian School of Medicine Nanyang Technological University Singapore Clinical Sciences Building 11 Mandalay Road Singapore 308232 Singapore

4. School of Materials Science and Engineering Nanyang Technological University Singapore 639798 Singapore

5. Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore

6. Institute for Health Innovation and Technology National University of Singapore Singapore 117599 Singapore

7. NUS Tissue Engineering Program National University of Singapore Singapore 117510 Singapore

8. Department of Biomedical Laboratory Science Norwegian University of Science and Technology Trondheim N‐7491 Norway

Abstract

AbstractEpithelial‐to‐mesenchymal transition (EMT) plays a crucial role in metastatic cancer progression, and current research, which relies heavily on 2D monolayer cultures, falls short in recapitulating the complexity of a 3D tumor microenvironment. To address this limitation, a transcriptomic meta‐analysis is conducted on diverse cancer types undergoing EMT in 2D and 3D cultures. It is found that mechanotransduction is elevated in 3D cultures and is further intensified during EMT, but not during 2D EMT. This analysis reveals a distinct 3D EMT gene signature, characterized by extracellular matrix remodeling coordinated by angiopoietin‐like 4 (Angptl4) along with other canonical EMT regulators. Utilizing hydrogel‐based 3D matrices with adjustable mechanical forces, 3D cancer cultures are established at varying physiological stiffness levels. A YAP:EGR‐1 mediated up‐regulation of Angptl4 expression is observed, accompanied by an upregulation of mesenchymal markers, at higher stiffness during cancer EMT. Suppression of Angptl4 using antisense oligonucleotides or anti‐cAngptl4 antibodies leads to a dose‐dependent abolishment of EMT‐mediated chemoresistance and tumor self‐organization in 3D, ultimately resulting in diminished metastatic potential and stunted growth of tumor xenografts. This unique programmable 3D cancer cultures simulate stiffness levels in the tumor microenvironment and unveil Angptl4 as a promising therapeutic target to inhibit EMT and impede cancer progression.

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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