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Direct conversion of osteosarcoma to adipocytes by targeting TNIK
Toru Hirozane, Mari Masuda, Teppei Sugano, Tetsuya Sekita, Naoko Goto, Toru Aoyama, Takato Sakagami, Yuko Uno, Hideki Moriyama, Masaaki Sawa, Naofumi Asano, Masaya Nakamura, Morio Matsumoto, Robert Nakayama, Tadashi Kondo, Akira Kawai, Eisuke Kobayashi, Tesshi Yamada
Toru Hirozane, Mari Masuda, Teppei Sugano, Tetsuya Sekita, Naoko Goto, Toru Aoyama, Takato Sakagami, Yuko Uno, Hideki Moriyama, Masaaki Sawa, Naofumi Asano, Masaya Nakamura, Morio Matsumoto, Robert Nakayama, Tadashi Kondo, Akira Kawai, Eisuke Kobayashi, Tesshi Yamada
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Research Article Cell biology Therapeutics

Direct conversion of osteosarcoma to adipocytes by targeting TNIK

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Abstract

Osteosarcoma (OS) is an aggressive mesenchymal tumor for which no molecularly targeted therapies are available. We have previously identified TRAF2- and NCK-interacting protein kinase (TNIK) as an essential factor for the transactivation of Wnt signal target genes and shown that its inhibition leads to eradication of colorectal cancer stem cells. The involvement of Wnt signaling in the pathogenesis of OS has been implicated. The aim of the present study was to examine the potential of TNIK as a therapeutic target in OS. RNA interference or pharmacological inhibition of TNIK suppressed the proliferation of OS cells. Transcriptome analysis suggested that a small-molecule inhibitor of TNIK upregulated the expression of genes involved in OS cell metabolism and downregulated transcription factors essential for maintaining the stem cell phenotype. Metabolome analysis revealed that this TNIK inhibitor redirected the metabolic network from carbon flux toward lipid accumulation in OS cells. Using in vitro and in vivo OS models, we confirmed that TNIK inhibition abrogated the OS stem cell phenotype, simultaneously driving conversion of OS cells to adipocyte-like cells through induction of PPARγ. In relation to potential therapeutic targeting in clinical practice, TNIK was confirmed to be in an active state in OS cell lines and clinical specimens. From these findings, we conclude that TNIK is applicable as a potential target for treatment of OS, affecting cell fate determination.

Authors

Toru Hirozane, Mari Masuda, Teppei Sugano, Tetsuya Sekita, Naoko Goto, Toru Aoyama, Takato Sakagami, Yuko Uno, Hideki Moriyama, Masaaki Sawa, Naofumi Asano, Masaya Nakamura, Morio Matsumoto, Robert Nakayama, Tadashi Kondo, Akira Kawai, Eisuke Kobayashi, Tesshi Yamada

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Figure 3

Metabolomic alterations associated with administration of TNIK inhibitor in OS cells.

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Metabolomic alterations associated with administration of TNIK inhibitor...
(A) Heatmap of 115 intracellular metabolites of U2OS cells treated with 1 μM NCB-0846 (846) or 1 μM NCB-0970 (970) for 72 hours. Relative concentrations or ratios of metabolites in U2OS cells treated with NCB-0846 or NCB-0970 were analyzed. The mean metabolite concentration in U2OS cells treated with DMSO was set as 1, and log2 values are depicted as a color scale (n = 3 per group). (B) Principal component analysis of metabolites of U2OS cells treated with DMSO (vehicle) (black), 1 μM NCB-0846 (red), or 1 μM NCB-0970 (blue) for 72 hours. (C) Pathway analysis showing high-impact alterations of the pentose phosphate, pyruvate metabolism, and fatty acid elongation pathways by NCB-0846. (D) Relative concentrations of metabolites involved in glycolysis, the pentose phosphate pathway, pyruvate metabolism/lipid synthesis, and the TCA cycle in U2OS cells treated in triplicate with 1 μM NCB-0846 (red) or 1 μM NCB-0970 (blue) for 72 hours. The mean metabolite concentration in U2OS cells treated with DMSO was set as 1. The complete metabolome data are available in Supplemental Table 3. L/P, lactate/pyruvate. Welch’s t test, *P < 0.05 compared with NCB-0970.

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