TY - JOUR
T1 - Small Extracellular Vesicles Promote Stiffness-mediated Metastasis
AU - Sneider, Alexandra
AU - Liu, Ying
AU - Starich, Bartholomew
AU - Du, Wenxuan
AU - Nair, Praful R
AU - Marar, Carolyn
AU - Faqih, Najwa
AU - Ciotti, Gabrielle E
AU - Kim, Joo Ho
AU - Krishnan, Sejal
AU - Ibrahim, Salma
AU - Igboko, Muna
AU - Locke, Alexus
AU - Lewis, Daniel M
AU - Hong, Hanna
AU - Karl, Michelle N
AU - Vij, Raghav
AU - Russo, Gabriella C
AU - Gómez-de-Mariscal, Estibaliz
AU - Habibi, Mehran
AU - Muñoz-Barrutia, Arrate
AU - Gu, Luo
AU - Eisinger-Mathason, T S Karin
AU - Wirtz, Denis
N1 - © 2024 The Authors; Published by the American Association for Cancer Research.
PY - 2024/5/9
Y1 - 2024/5/9
N2 - UNLABELLED: Tissue stiffness is a critical prognostic factor in breast cancer and is associated with metastatic progression. Here we show an alternative and complementary hypothesis of tumor progression whereby physiologic matrix stiffness affects the quantity and protein cargo of small extracellular vesicles (EV) produced by cancer cells, which in turn aid cancer cell dissemination. Primary patient breast tissue released by cancer cells on matrices that model human breast tumors (25 kPa; stiff EVs) feature increased adhesion molecule presentation (ITGα2β1, ITGα6β4, ITGα6β1, CD44) compared with EVs from softer normal tissue (0.5 kPa; soft EVs), which facilitates their binding to extracellular matrix proteins including collagen IV, and a 3-fold increase in homing ability to distant organs in mice. In a zebrafish xenograft model, stiff EVs aid cancer cell dissemination. Moreover, normal, resident lung fibroblasts treated with stiff and soft EVs change their gene expression profiles to adopt a cancer-associated fibroblast phenotype. These findings show that EV quantity, cargo, and function depend heavily on the mechanical properties of the extracellular microenvironment.SIGNIFICANCE: Here we show that the quantity, cargo, and function of breast cancer-derived EVs vary with mechanical properties of the extracellular microenvironment.
AB - UNLABELLED: Tissue stiffness is a critical prognostic factor in breast cancer and is associated with metastatic progression. Here we show an alternative and complementary hypothesis of tumor progression whereby physiologic matrix stiffness affects the quantity and protein cargo of small extracellular vesicles (EV) produced by cancer cells, which in turn aid cancer cell dissemination. Primary patient breast tissue released by cancer cells on matrices that model human breast tumors (25 kPa; stiff EVs) feature increased adhesion molecule presentation (ITGα2β1, ITGα6β4, ITGα6β1, CD44) compared with EVs from softer normal tissue (0.5 kPa; soft EVs), which facilitates their binding to extracellular matrix proteins including collagen IV, and a 3-fold increase in homing ability to distant organs in mice. In a zebrafish xenograft model, stiff EVs aid cancer cell dissemination. Moreover, normal, resident lung fibroblasts treated with stiff and soft EVs change their gene expression profiles to adopt a cancer-associated fibroblast phenotype. These findings show that EV quantity, cargo, and function depend heavily on the mechanical properties of the extracellular microenvironment.SIGNIFICANCE: Here we show that the quantity, cargo, and function of breast cancer-derived EVs vary with mechanical properties of the extracellular microenvironment.
KW - Extracellular Vesicles/metabolism
KW - Animals
KW - Humans
KW - Breast Neoplasms/pathology
KW - Zebrafish
KW - Mice
KW - Female
KW - Tumor Microenvironment
KW - Neoplasm Metastasis
KW - Cell Line, Tumor
KW - Extracellular Matrix/metabolism
U2 - 10.1158/2767-9764.CRC-23-0431
DO - 10.1158/2767-9764.CRC-23-0431
M3 - Article
C2 - 38630893
SN - 2767-9764
VL - 4
SP - 1240
EP - 1252
JO - Cancer Research Communications
JF - Cancer Research Communications
IS - 5
ER -