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JNK1 determines the oncogenic or tumor-suppressive activity of the integrin-linked kinase in human rhabdomyosarcoma
Adam D. Durbin, Gino R. Somers, Michael Forrester, Malgorzata Pienkowska, Gregory E. Hannigan, David Malkin
Adam D. Durbin, Gino R. Somers, Michael Forrester, Malgorzata Pienkowska, Gregory E. Hannigan, David Malkin
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Research Article

JNK1 determines the oncogenic or tumor-suppressive activity of the integrin-linked kinase in human rhabdomyosarcoma

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Abstract

Although most reports describe the protein kinase integrin-linked kinase (ILK) as a proto-oncogene, occasional studies detail opposing functions in the regulation of normal and transformed cell proliferation, differentiation, and apoptosis. Here, we demonstrated that ILK functions as an oncogene in the highly aggressive pediatric sarcoma alveolar rhabdomyosarcoma (ARMS) and as a tumor suppressor in the related embryonal rhabdomyosarcoma (ERMS). These opposing functions hinge on signaling through a noncanonical ILK target, JNK1, to the proto-oncogene c-Jun. RNAi-mediated depletion of ILK induced activation of JNK and its target, c-Jun, resulting in growth of ERMS cells, whereas in ARMS cells, it led to loss of JNK/c-Jun signaling and suppression of growth both in vitro and in vivo. Ectopic expression of the fusion gene characteristic of ARMS (paired box 3–forkhead homolog in rhabdomyosarcoma [PAX3-FKHR]) in ERMS cells was sufficient to convert them to an ARMS signaling phenotype and render ILK activity oncogenic. Furthermore, restoration of JNK1 in ARMS reestablished a tumor-suppressive function for ILK. These findings indicate what we believe to be a novel effector pathway regulated by ILK, provide a mechanism for interconversion of oncogenic and tumor-suppressor functions of a single regulatory protein based on the genetic background of the tumor cells, and suggest a rationale for tailored therapy of rhabdomyosarcoma based on the different activities of ILK.

Authors

Adam D. Durbin, Gino R. Somers, Michael Forrester, Malgorzata Pienkowska, Gregory E. Hannigan, David Malkin

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Figure 6

The JNK pathway is a transducer of the ERMS response to ILK depletion.

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The JNK pathway is a transducer of the ERMS response to ILK depletion.
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(A) ERMS cell lines were transfected with nothing (control; not shown) or ILK or control siRNAs and exposed to 20 μM SP600125, inactive JNK inhibitor N1-Methyl-1,9-pyrazoloanthrone (SP600125 negative [neg] control), or equal concentrations of DMSO vehicle for 1 hour before MTT assay (n = 4). Data are normalized to lipofectamine-transfected vehicle-treated controls. *P < 0.05, **P < 0.01, ANOVA. (B) Rh6 cells were treated as in A, but lysed for Western blotting. Data are representative of 4 independent replicates. Arrows show p54 and p46 JNK proteins. (C) ERMS cells were transfected with ILK, JNK1, JNK2, or control siRNAs and analyzed by MTT assay 4 days after transfection (n = 4). Data are normalized to lipofectamine-transfected controls. ***P < 0.001, ANOVA. (D) Rh6 cells were treated as in C, but lysed for Western blotting. Data are representative of 4 independent replicates. Arrows show p54 and p46 JNK proteins. (E) ERMS cells were transfected with ILK or control siRNAs and exposed to adenovirus encoding TAM67 or GFP (1,000 IU), and cells were analyzed by MTT assay 4 days after transfection (n = 4). Data are normalized to lipofectamine-transfected GFP adenovirus–treated controls. #P < 0.01, ##P < 0.001 versus control siRNA; ***P < 0.001, ANOVA. (F) Rh6 cells were treated as in E, but lysed for Western blotting. Data are representative of 4 independent replicates. Arrows show endogenous c-Jun and TAM67 proteins.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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