Engineered in vivo and in vitro tumor model recapitulates vasculogenic mimicry signatures in melanoma

Author:

Shuai Qizhi1ORCID,Xu Xinrui12,Liang Yuxiang13,Halbiyat Zulala1,Lu Xin1,Hu Zixuan1,Peng Zhiwei1,An Jie4,Feng Zhiwei1,Huang Tingjuan1ORCID,Zhao Hong1,Liu Zhizhen1,Xu Jun5,Xie Jun1

Affiliation:

1. Department of Biochemistry and Molecular Biology, Shanxi Key Laboratory of Birth Defect and Cell Regeneration, MOE Key Laboratory of Coal Environmental Pathogenicity and Prevention Shanxi Medical University Taiyuan China

2. Laboratory of Ethnopharmacology, Tissue‐Orientated Property of Chinese Medicine Key Laboratory of Sichuan Province West China School of Medicine, West China Hospital, Sichuan University Chengdu China

3. Experimental Animal Center of Shanxi Medical University Shanxi Key Laboratory of Human Disease and Animal Models Taiyuan China

4. Department of Nuclear Medicine The First Hospital of Shanxi Medical University, Collaborative Innovation Center for Molecular Imaging of Precision Medicine, Shanxi Medical University Taiyuan China

5. Department of Hepatopancreatobiliary Surgery The First Hospital of Shanxi Medical University Taiyuan China

Abstract

AbstractVasculogenic mimicry (VM) describes a process by which tumor cells formed a novel microcirculation pattern in an endothelial cell‐free manner. Clinically, VM is associated with aggressive phenotype and poor patient survival. However, the current models for investigating VM include 2D monolayer cultures, Matrigel‐based cultures, and animal models, each of which has limitations. Matrigel‐based models often exhibit batch‐to‐batch variations, while in vivo tumor models currently produce insufficient amounts of VM. There is currently no suitable tumor model to discover new therapeutic targets against VM. Herein, we establish an extracellular matrix (ECM)‐based engineered tumor model in vivo and in vitro. In this study, we demonstrate that matrix proteins enhanced the VM formation in the engineered xenograft model. Furthermore, we also investigated the role of collagen/fibronectin (FN) in melanoma progression and VM formation. Compared with cells cultured on TCPS plates, the B16F10 cells cultured on collagen/FN coated plates showed increased proliferation and stemness, and significantly enhanced invasion and formation of VM networks. Molecular mechanism analysis showed that Integrin/VE‐cadherin/EphA2/PI3K/MMP‐2 signaling pathways are responsible for VM formation. Our results indicate that collagen/FN matrix plays an important role in VM formation in melanoma, suggesting that ECM protein is a potential therapeutic target for anti‐VM therapy for melanoma.

Funder

National Key Research and Development Program of China

Fund for Shanxi Key Subjects Construction

National Natural Science Foundation of China

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biotechnology

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