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Ligand-independent integrin β1 signaling supports lung adenocarcinoma development
Scott M. Haake, Erin J. Plosa, Jonathan A. Kropski, Lindsay A. Venton, Anupama Reddy, Fabian Bock, Betty T. Chang, Allen J. Luna, Kateryna Nabukhotna, Zhi-Qi Xu, Rebecca A. Prather, Sharon Lee, Harikrishna Tanjore, Vasiliy V. Polosukhin, Olga M. Viquez, Angela Jones, Wentian Luo, Matthew H. Wilson, W. Kimryn Rathmell, Pierre P. Massion, Ambra Pozzi, Timothy S. Blackwell, Roy Zent
Scott M. Haake, Erin J. Plosa, Jonathan A. Kropski, Lindsay A. Venton, Anupama Reddy, Fabian Bock, Betty T. Chang, Allen J. Luna, Kateryna Nabukhotna, Zhi-Qi Xu, Rebecca A. Prather, Sharon Lee, Harikrishna Tanjore, Vasiliy V. Polosukhin, Olga M. Viquez, Angela Jones, Wentian Luo, Matthew H. Wilson, W. Kimryn Rathmell, Pierre P. Massion, Ambra Pozzi, Timothy S. Blackwell, Roy Zent
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Research Article Oncology

Ligand-independent integrin β1 signaling supports lung adenocarcinoma development

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Abstract

Integrins — the principal extracellular matrix (ECM) receptors of the cell — promote cell adhesion, migration, and proliferation, which are key events for cancer growth and metastasis. To date, most integrin-targeted cancer therapeutics have disrupted integrin-ECM interactions, which are viewed as critical for integrin functions. However, such agents have failed to improve cancer patient outcomes. We show that the highly expressed integrin β1 subunit is required for lung adenocarcinoma development in a carcinogen-induced mouse model. Likewise, human lung adenocarcinoma cell lines with integrin β1 deletion failed to form colonies in soft agar and tumors in mice. Mechanistically, we demonstrate that these effects do not require integrin β1–mediated adhesion to ECM but are dependent on integrin β1 cytoplasmic tail-mediated activation of focal adhesion kinase (FAK). These studies support a critical role for integrin β1 in lung tumorigenesis that is mediated through constitutive, ECM binding–independent signaling involving the cytoplasmic tail.

Authors

Scott M. Haake, Erin J. Plosa, Jonathan A. Kropski, Lindsay A. Venton, Anupama Reddy, Fabian Bock, Betty T. Chang, Allen J. Luna, Kateryna Nabukhotna, Zhi-Qi Xu, Rebecca A. Prather, Sharon Lee, Harikrishna Tanjore, Vasiliy V. Polosukhin, Olga M. Viquez, Angela Jones, Wentian Luo, Matthew H. Wilson, W. Kimryn Rathmell, Pierre P. Massion, Ambra Pozzi, Timothy S. Blackwell, Roy Zent

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Figure 5

Expression of the integrin β1 cytoplasmic tail in cells lacking endogenous integrin β1 restores colony and tumor formation.

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Expression of the integrin β1 cytoplasmic tail in cells lacking endogeno...
(A) Full-length integrin β1 (ITGB1), the cytoplasmic domain of integrin β1 fused to the extracellular domain of Tac (Tacβ1), and full-length integrin β1 with Y783A and Y795A mutations (YYAA) were reexpressed in integrin β1–KO A549 cells. Panel made with assistance from www.biorender.com (B) Surface expression of transfected proteins was measured via flow cytometry by targeting the extracellular domain of integrin β1 (KO.ITGB1, KO.YYAA) or Tac (KO.Tacβ1). (C–E) Cells were evaluated for adhesion, migration, and proliferation on vitronectin and laminin I (n = 3 replicates). (F) A soft agar colony formation assay was performed using the KO.ITGB1, KO.Tacβ1, and KO.YYAA cells. Representative photomicrographs are shown, and data are quantified (n = 3 replicates, each replicate consisting of 6 wells, representative data from 1 replicate shown). (G) Cells were injected into the left lung of athymic mice (KO.ITGB1, n = 10 mice; KO.Tacβ1, n = 10 mice; KO.YYAA, n = 11 mice). Mice were sacrificed, and histologic evaluation was performed to determine whether cells formed tumors (representative photomicrographs shown, asterisk denotes tumor). Scale bar: 20 μm. Left lung from each mouse was sectioned every 100 μm times 5 sections. *P < 0.05; **P < 0.01; ****P < 0.0001 by Sidak’s multiple-comparison test. Data are shown as mean ± SEM.

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