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DDR1-induced neutrophil extracellular traps drive pancreatic cancer metastasis
Jenying Deng, Yaan Kang, Chien-Chia Cheng, Xinqun Li, Bingbing Dai, Matthew H. Katz, Taoyan Men, Michael P. Kim, Eugene A. Koay, Huocong Huang, Rolf A. Brekken, Jason B. Fleming
Jenying Deng, Yaan Kang, Chien-Chia Cheng, Xinqun Li, Bingbing Dai, Matthew H. Katz, Taoyan Men, Michael P. Kim, Eugene A. Koay, Huocong Huang, Rolf A. Brekken, Jason B. Fleming
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Research Article Oncology

DDR1-induced neutrophil extracellular traps drive pancreatic cancer metastasis

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Abstract

Pancreatic ductal adenocarcinoma (PDAC) tumors are characterized by a desmoplastic reaction resulting in dense deposition of collagen that is known to promote cancer progression. A central mediator of protumorigenic collagen signaling is the receptor tyrosine kinase discoid domain receptor 1 (DDR1). DDR1 is a critical driver of a mesenchymal and invasive cancer cell PDAC phenotype. Previous studies have demonstrated that genetic or pharmacologic inhibition of DDR1 reduces PDAC tumorigenesis and metastasis. Here, we investigated whether DDR1 signaling has cancer cell nonautonomous effects that promote PDAC progression and metastasis. We demonstrate that collagen-induced DDR1 activation in cancer cells is a major stimulus for CXCL5 production, resulting in the recruitment of tumor-associated neutrophils (TANs), the formation of neutrophil extracellular traps (NETs), and subsequent cancer cell invasion and metastasis. Moreover, we have identified that collagen-induced CXCL5 production was mediated by a DDR1/PKCθ/SYK/NF-κB signaling cascade. Together, these results highlight the critical contribution of the collagen I–DDR1 interaction in the formation of an immune microenvironment that promotes PDAC metastasis.

Authors

Jenying Deng, Yaan Kang, Chien-Chia Cheng, Xinqun Li, Bingbing Dai, Matthew H. Katz, Taoyan Men, Michael P. Kim, Eugene A. Koay, Huocong Huang, Rolf A. Brekken, Jason B. Fleming

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Figure 2

DDR1 induces CXCL5 production in pancreatic cancer cells.

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DDR1 induces CXCL5 production in pancreatic cancer cells.
(A) Chemokine ...
(A) Chemokine array analysis in cell lysate and supernatant of MDA-PATC 148 cells with knockdown DDR1. (B and C) MDA-PATC 148 cells with knockdown or reexpressed DDR1 were treated with collagen I for 3 hours. (B) CXCL5 mRNA level by using real-time PCR. (C) CXCL5 protein level by using ELISA. (D) CXCL5 expression in overexpressed DDR1 in 5 pancreatic cancer cell lines. Upper: DDR1 levels were checked by western; middle: CXCL5 mRNA level were detected by real-time PCR; lower: CXCL5 protein levels were analyzed by ELISA. (E–G) Mice were orthotopically injected with MDA-PATC 148 (control, DDR1-deficient or DDR1-reexpression clones) cells for 9 weeks. (E) IHC staining with anti-DDR1 (upper panel) and anti-CXCL5 (bottom panel) antibodies in pancreas. (F) ELISA showed CXCL5 level in plasma harvest from mice. (G) FACS by using anti-CD11b and anti-Ly6G antibodies to determine the presence of CD11b+Ly6G+ neutrophils infiltration in pancreas. (B–D) Data are mean ± SD. n = 3–4, 3 independent experiments; (B and C) 1-way ANOVA with Sidak post hoc testing; (D) Unpaired 2-tailed Student’s t test. *P < 0.05; **P < 0.01. (F and G) n = 5–10 mice, data performed in triplicate; 1-way ANOVA with Sidak post hoc testing. **P < 0.01; ***P < 0.001. Data show signal after membrane exposed to x ray film for 2 minutes.

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