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Primary tumors induce neutrophil extracellular traps with targetable metastasis-promoting effects
Roni F. Rayes, Jack G. Mouhanna, Ioana Nicolau, France Bourdeau, Betty Giannias, Simon Rousseau, Daniela Quail, Logan Walsh, Veena Sangwan, Nicholas Bertos, Jonathan Cools-Lartigue, Lorenzo E. Ferri, Jonathan D. Spicer
Roni F. Rayes, Jack G. Mouhanna, Ioana Nicolau, France Bourdeau, Betty Giannias, Simon Rousseau, Daniela Quail, Logan Walsh, Veena Sangwan, Nicholas Bertos, Jonathan Cools-Lartigue, Lorenzo E. Ferri, Jonathan D. Spicer
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Research Article Oncology

Primary tumors induce neutrophil extracellular traps with targetable metastasis-promoting effects

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Abstract

Targeting the dynamic tumor immune microenvironment (TIME) can provide effective therapeutic strategies for cancer. Neutrophils are the predominant leukocyte population in mice and humans, and mounting evidence implicates these cells during tumor growth and metastasis. Neutrophil extracellular traps (NETs) are networks of extracellular neutrophil DNA fibers that are capable of binding tumor cells to support metastatic progression. Here, we demonstrate that circulating NET levels are elevated in advanced esophageal, gastric, and lung cancer patients compared with local cancers and healthy controls. Using preclinical murine models of lung and colon cancer, in combination with intravital video microscopy, we show that NETs functionally regulate disease progression and that blocking NETosis through multiple strategies significantly inhibits spontaneous metastasis to the lung and liver. Furthermore, we show how inhibiting tumor-induced NETs decreases cancer cell adhesion to liver sinusoids following intrasplenic injection — a mechanism previously thought to be driven primarily by exogenous stimuli. Thus, in addition to neutrophil abundance, the functional contribution of NETosis within the TIME has critical translational relevance and represents a promising target to impede metastatic dissemination.

Authors

Roni F. Rayes, Jack G. Mouhanna, Ioana Nicolau, France Bourdeau, Betty Giannias, Simon Rousseau, Daniela Quail, Logan Walsh, Veena Sangwan, Nicholas Bertos, Jonathan Cools-Lartigue, Lorenzo E. Ferri, Jonathan D. Spicer

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Figure 4

NET-deficient mice show reduced lung and colon cancer cell adhesion to the liver.

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NET-deficient mice show reduced lung and colon cancer cell adhesion to t...
(A) Timeline of murine intravital microscopy (IVM) experiment. (B) Mean (± SEM) number of adherent lung carcinoma cells (H59-GFP) per field in the 5 groups of mice. (C) Representative fluorescence confocal microscopy images of IVM performed on the mice from B, showing H59-GFP cells in green; liver sinusoids are shown in blue (CD31-PE staining). (D) Mean (± SEM) number of adherent colon carcinoma cells (MC38-GFP) per field in the 5 groups of mice. (E) Representative fluorescence confocal microscopy images of IVM performed on the mice from D, showing MC38-GFP cells in green; liver sinusoids are shown using bright field. For all panels: n = 3–6 mice, with 10 fields per mouse. A Kruskal-Wallis test was used to calculate significance for B and D because the data were not normally distributed, as assessed by the Kolmogorov-Smirnov test. *P < 0.05. Magnification, 20×.

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ISSN 2379-3708

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