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Insulin supplementation attenuates cancer-induced cardiomyopathy and slows tumor disease progression
James T. Thackeray, Stefan Pietzsch, Britta Stapel, Melanie Ricke-Hoch, Chun-Wei Lee, Jens P. Bankstahl, Michaela Scherr, Jörg Heineke, Gesine Scharf, Arash Haghikia, Frank M. Bengel, Denise Hilfiker-Kleiner
James T. Thackeray, Stefan Pietzsch, Britta Stapel, Melanie Ricke-Hoch, Chun-Wei Lee, Jens P. Bankstahl, Michaela Scherr, Jörg Heineke, Gesine Scharf, Arash Haghikia, Frank M. Bengel, Denise Hilfiker-Kleiner
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Research Article Cardiology Oncology

Insulin supplementation attenuates cancer-induced cardiomyopathy and slows tumor disease progression

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Abstract

Advanced cancer induces fundamental changes in metabolism and promotes cardiac atrophy and heart failure. We discovered systemic insulin deficiency in cachectic cancer patients. Similarly, mice with advanced B16F10 melanoma (B16F10-TM) or colon 26 carcinoma (C26-TM) displayed decreased systemic insulin associated with marked cardiac atrophy, metabolic impairment, and function. B16F10 and C26 tumors decrease systemic insulin via high glucose consumption, lowering pancreatic insulin production and producing insulin-degrading enzyme. As tumor cells consume glucose in an insulin-independent manner, they shift glucose away from cardiomyocytes. Since cardiomyocytes in both tumor models remained insulin responsive, low-dose insulin supplementation by subcutaneous implantation of insulin-releasing pellets improved cardiac glucose uptake, atrophy, and function, with no adverse side effects. In addition, by redirecting glucose to the heart in addition to other organs, the systemic insulin treatment lowered glucose usage by the tumor and thereby decreased tumor growth and volume. Insulin corrected the cancer-induced reduction in cardiac Akt activation and the subsequent overactivation of the proteasome and autophagy. Thus, cancer-induced systemic insulin depletion contributes to cardiac wasting and failure and may promote tumor growth. Low-dose insulin supplementation attenuates these processes and may be supportive in cardio-oncologic treatment concepts.

Authors

James T. Thackeray, Stefan Pietzsch, Britta Stapel, Melanie Ricke-Hoch, Chun-Wei Lee, Jens P. Bankstahl, Michaela Scherr, Jörg Heineke, Gesine Scharf, Arash Haghikia, Frank M. Bengel, Denise Hilfiker-Kleiner

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Figure 3

Effect of acute insulin treatment on cardiac and tumor glucose uptake in B16F10-TM and C26-TM mice.

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Effect of acute insulin treatment on cardiac and tumor glucose uptake in...
(A and C) Blood glucose concentration after oral glucose load (3 mg/g, 15 minutes after loading) and (B and D) corresponding plasma insulin concentrations in B16F10-TM mice (n = 6 vs. control, n = 5) and C26-TM mice (vs. control, n = 8 each). (E and H) Sample 3D maximum intensity projection 18F-FDG PET-CT and coronal myocardial images obtained in representative B16F10-TM or C26-TM mice, without (No) and with insulin (Ins) pretreatment (6 mU/g; 30 minutes prior to scan) on consecutive days. (F and I) Semiquantitative serial assessment of heart and (G and J) of the tumor 18F-FDG uptake (percentage injected dose per gram of tissue [%ID/g]) without and with insulin in B16F10-TM (n = 5) and C26-TM (n = 6) mice. (K and L) 18F-FDG uptake within 60 minutes in isolated cardiomyocytes from B16F10-TM (n = 6 vs. control, n = 7) and C26-TM (vs. control, n = 6 each) mice, with and without insulin (INS, 50 nM); stimulation was measured in triplicates for each individual and corrected to DNA content. Healthy control mice were injected with PBS as vehicle. Data are depicted as mean ± SD; *P < 0.05, **P < 0.01 vs. control or untreated mice, ##P < 0.01 vs. unstimulated cardiomyocytes, using either 2-tailed Student’s unpaired (A–C) or paired (F, G, I, and J) t tests, Mann-Whitney (D) test, or 2-way ANOVA followed by Bonferroni post-hoc tests as required (K and L).

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