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Anticachectic regulator analysis reveals Perp-dependent antitumorigenic properties of 3-methyladenine in pancreatic cancer
Aneesha Dasgupta, Paige C. Arneson-Wissink, Rebecca E. Schmitt, Dong Seong Cho, Alexandra M. Ducharme, Tara L. Hogenson, Eugene W. Krueger, William R. Bamlet, Lizhi Zhang, Gina L. Razidlo, Martin E. Fernandez-Zapico, Jason D. Doles
Aneesha Dasgupta, Paige C. Arneson-Wissink, Rebecca E. Schmitt, Dong Seong Cho, Alexandra M. Ducharme, Tara L. Hogenson, Eugene W. Krueger, William R. Bamlet, Lizhi Zhang, Gina L. Razidlo, Martin E. Fernandez-Zapico, Jason D. Doles
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Research Article Muscle biology Oncology

Anticachectic regulator analysis reveals Perp-dependent antitumorigenic properties of 3-methyladenine in pancreatic cancer

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Abstract

Approximately 80% of pancreatic cancer patients suffer from cachexia, and one-third die due to cachexia-related complications such as respiratory failure and cardiac arrest. Although there has been considerable research into cachexia mechanisms and interventions, there are, to date, no FDA-approved therapies. A major contributing factor for the lack of therapy options could be the failure of animal models to accurately recapitulate the human condition. In this study, we generated an aged model of pancreatic cancer cachexia to compare cachexia progression in young versus aged tumor-bearing mice. Comparative skeletal muscle transcriptome analyses identified 3-methyladenine (3-MA) as a candidate antiwasting compound. In vitro analyses confirmed antiwasting capacity, while in vivo analysis revealed potent antitumor effects. Transcriptome analyses of 3-MA–treated tumor cells implicated Perp as a 3-MA target gene. We subsequently (a) observed significantly higher expression of Perp in cancer cell lines compared with control cells, (b) noted a survival disadvantage associated with elevated Perp, and (c) found that 3-MA–associated Perp reduction inhibited tumor cell growth. Finally, we have provided in vivo evidence that survival benefits conferred by 3-MA administration are independent of its effect on tumor progression. Taken together, we report a mechanism linking 3-MA to Perp inhibition, and we further implicate Perp as a tumor-promoting factor in pancreatic cancer.

Authors

Aneesha Dasgupta, Paige C. Arneson-Wissink, Rebecca E. Schmitt, Dong Seong Cho, Alexandra M. Ducharme, Tara L. Hogenson, Eugene W. Krueger, William R. Bamlet, Lizhi Zhang, Gina L. Razidlo, Martin E. Fernandez-Zapico, Jason D. Doles

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Figure 2

Comparative transcriptome analyses of young and aged skeletal muscle from control and tumor-bearing mice.

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Comparative transcriptome analyses of young and aged skeletal muscle fro...
(A) Principal component analysis (PCA) plot depicting global differences in the muscle transcriptome of young/aged control and tumor-bearing mice (n = 5 for aged/young controls and aged KPC, n = 8 for young KPC). (B) Heatmaps depicting differentially expressed genes (DEGs; log-transformed and row-normalized) between the control and tumor-bearing groups in the young (left) and aged (right) cohorts. (C) A Venn diagram depicting distinct and common DEGs between young and aged cohorts. (D) Log-transformed FPKM values of genes specifically altered in the aged cohort — IL-1 receptor type 1 (Il1-r1), Myostatin (Mstn), Uncoupling Protein 3 (Ucp3). (E) Ingenuity Pathway Analyses (IPA) of young (left) and aged (right) DEGs. (F) A Venn diagram depicting the distinct and common compounds predicted to reverse the cachectic phenotype in the young and aged cohorts. (G) Activation Z score and P value of 3-Methyladenine (3-MA), a top candidate compound identified based on aged control/KPC DEGs. (H) Log-transformed FPKM values of genes that contributed to the 3-MA prediction: β secretase 1 (Bace1), Sequestosome 1 (SQSTM1), Microtubule Associated Protein 1 Light Chain 3 β (MAP1LC3B), Heme Oxygenase 1 (Hmox1), Insulin receptor (INSR). Data are mean ± SEM, compared with 2-tailed Student’s t test (D and H). **P < 0.01; ***P < 0.001.

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