Lower Concentrations of Glucose or Insulin Decrease the Risk of Various Types of Cancer in the Long-Lived Ames Dwarf Mouse by Increasing the Expression of p27Kip1, a Cell-Cycle Repressor Protein — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Lower Concentrations of Glucose or Insulin Decrease the Risk of Various Types of Cancer in the Long-Lived Ames Dwarf Mouse by Increasing the Expression of p27Kip1, a Cell-Cycle Repressor Protein
Department of Nutrition Sciences (DNS) and Nutrition Obesity Research Center (NORC), University of Alabama at Birmingham, Birmingham, AL, USA
1 Department of Nutrition Sciences (DNS) and Nutrition Obesity Research Center (NORC), University of Alabama at Birmingham, Birmingham, AL, USA
Introduction . The molecular biological mechanism of the increased incidence of the various types of cancer in obesity or type 2 diabetes in rodents or humans has largely been resolved in recent years. By contrast, the molecular biological mechanism of the decreased, not increased, incidence of the various types of cancer in the homozygous long-lived Ames dwarf mice still remains unresolved. Objective. The first objective of the present study was to investigate whether the decrease in the incidence of cancer in the homozygous long-lived Ames dwarf mice is due to the increase, not decrease, in the expression of p27Kip1, a cell cycle repressor protein. The second objective was to investigate whether the decrease in the incidence of cancer in the homozygous long-lived Ames dwarf mice is due to the decrease, not increase, in the levels of glucose or insulin. Methods. To achieve these objectives, we first performed western immunoblot analysis of the hepatic expression of p27Kip1 protein. We then performed, using a human breast cancer cell line in vitro , the luciferase reporter plasmid assay to determine whether the translation initiation activity of the p27Kip1 mRNA is increased when the concentrations of either glucose or insulin are decreased. Results and Conclusion. The results of the first objective indicated that the hepatic expression of p27Kip1 protein was up-regulated in the homozygous long-lived Ames dwarf mice as expected. We also found that the lower concentrations of glucose or insulin increased the translation initiation activity of the p27Kip1 mRNA.
KeywordsCancerGlucoseInsulinCaloric RestrictionLong-Lived Ames Dwarf Mousep27Kip1Cell-Cycle Repressor Protein
Sornson, M.W., Wu, W., Dansen, J.S., Flynn, S.E., Norman, D.J., O’Connell, S.M., Gukovsky, I., Carriere, C., Ryan, A.K., Miller, A.P., Zuo, L., Gleiberman, A.S., Anderson, B., Beamer, W.G. and Rosenfeld, M.G. (1996) Pituitary Lineage Determination by the Prophet of Pit-1 Homeodomain Factor Defective in Ames Dwarfism. Nature, 384, 327-333. https://doi.org/10.1038/384327a0
Ikeno, Y., Lew, C.M., Cortez, L.A., Webb, C.R., Lee, S. and Hubbard, G.B. (2006) Do Long-Lived Mutant and Calorie-Restricted Mice Share Common Anti-Aging Mechanisms? A Pathological Point of View. Age, 28, 163-171. https://doi.org/10.1007/s11357-006-9007-7
Wiesenborn, D.S., Galvez, E.J.C., Spinel, L., Victoria, B., Allen, B., Schneider, A., Gesing, A., Al-Regaiey, K.A. Strowig, T., Schaefer, K.H. and Masternak, M.M. (2019) The Role of Ames Dwarfism and Calorie Restriction on Gut Microbiota. The Journal of Gerontology: Biological Sciences, 20, 1-8. https://doi.org/10.1093/gerona/glz236
Ikeno, Y., Bronson, R.T., Hubbard, G.B., et al. (2003) Delayed Occurrence of Fatal Neoplastic Diseases in Ames Dwarf Mice: Correlation to Extended Longevity. The Journal of Gerontology Ser. A, 58, B291-B296. https://doi.org/10.1093/gerona/58.4.B291
Sharp, Z.D. and Bartke, A. (2005) Evidence for Down-Regulation of Phosphoinositide 3-Kinase/Akt/Mammalian Target of Rapamycin (PI3K/Akt/mTOR)-Dependent Translation Regulatory Signaling Pathways in Ames Dwarf Mice. The Journals of Gerontology Ser. A, 60, B293-B300. https://doi.org/10.1093/gerona/60.3.293
Eto, I. (2020) Higher Concentrations of Glucose or Insulin Increase the Risk of Various Types of Cancer in Obesity or Type 2 Diabetes by Decreasing the Expression of p27Kip1, a Cell Cycle Repressor Protein. American Journal of Molecular Biology, 10, 1-11. https://doi.org/10.4236/ajmb.2020.101001
Eto, I. (2018) Expression of p27Kip1, a Cell Cycle Repressor Protein with Dual Roles for Both Cancer Prevention and Promotion, Is Regulated Primarily at the Level of Unusual p27Kip1 mRNA—A Short Concept Proposal. American Journal of Molecular Biology, 8, 186-193. https://doi.org/10.4236/ajmb.2018.83016
Eto, I. (2013) Expression of p27Kip1, a Cell Cycle Repressor Protein, Is Inversely Associated with Potential Carcinogenic Risk in the Genetic Rodent Models of Obesity and Long-Lived Ames Dwarf Mice. Metabolism Clinical and Experimental, 62, 873-887. https://doi.org/10.1016/j.metabol.2013.01.001
Eto, I. (2014) Expression of p27(Kip1), a Cyclin-Dependent Kinase Inhibitor, in Human Peripheral Blood Mononuclear Cells Is Inversely Associated with Potential Carcinogenic Risk in Obese Type 2 Diabetic Individuals Relative to Lean Normal Controls. American Journal of Molecular Biology, 3, 113-128. https://doi.org/10.4236/ajmb.2014.43013
Alkarain, A. and Slingerland, J. (2004) Deregulation of p27 by Oncogenic Signaling and Its Prognostic Significance in Breast Cancer. Breast Cancer Research, 6, 13-21. https://doi.org/10.1186/bcr722
Eto, I. (2006) Nutritional and Chemopreventive Anti-Cancer Agents Up-Regulate Expression of p27Kip1, a Cyclin-Dependent Kinase Inhibitor, in Mouse JB6 Epidermal and Human MCF7, MDA-MB-321 and AU565 Breast Cancer Cells. Cancer Cell International, 6, 20. https://doi.org/10.1186/1475-2867-6-1
Eto, I. (2010) Upstream Molecular Signaling Pathways of p27(Kip1) Expression: Effects of 4-Hydroxytamoxifen, Dexamethasone, and Retinoic Acids. Cancer Cell International, 10, 3. https://doi.org/10.1186/1475-2867-10-3
Eto, I. (2011) Upstream Molecular Signaling Pathways of p27(Kip1) Expression in Human Breast Cancer Cells in Vitro: Differential Effects of 4-Hydroxytamoxifen and Deficiency of Either D-(+)-glucose or L-Leucine. Cancer Cell International, 11, 31. https://doi.org/10.1186/1475-2867-11-31
Hengst, L. and Reed, S.I. (1996) Translational Control of p27Kip1 Accumulation during the Cell Cycle. Science, 71, 1861-1864. https://doi.org/10.1126/science.271.5257.1861
Agrawal, D., Hauser, P., McPherson, F., et al. (1996) Repression of p27(kip1) Synthesis by PDGF in balb/c 3 T3 Cells. Molecular and Cell Biology, 16, 4327-4336. https://doi.org/10.1128/MCB.16.8.4327
Millard, S.S., Yan, J.S., Nguyen, H., et al. (1997) Enhanced Ribosomal Association of p27(Kip1) mRNA Is a Mechanism Contributing to Accumulation during Growth Arrest. Journal of Biological Chemistry, 19, 7093-7098. https://doi.org/10.1074/jbc.272.11.7093
Goepfert, U., Kullmann, M. and Hengst, L. (2003) Cell Cycle-Dependent Translation of p27 Involves a Responsive Element in Its 5’-UTR That Overlaps with a uORF. Human Molecular Genetics, 12, 1767-1779. https://doi.org/10.1093/hmg/ddg177
Pagano, M., Tam, S.W., Theodoras, A.M., et al. (1995) Role of the Ubiquitin-Proteasome Pathway in Regulating Abundance of the Cyclin-Dependent Kinase Inhibitor p27. Science, 269, 682-685. https://doi.org/10.1126/science.7624798
Malek, N.P., Sundberg, H., McGrew, S., et al. (2001) A Mouse Knock-In Model Exposes Sequential Proteolytic Pathways That Regulate p27Kip1 in G1 and S Phase. Nature, 413, 323-327. https://doi.org/10.1038/35095083
Hara, T., Kamura, T., Nakayama, K., et al. (2001) Degradation of p27(Kip1) at the G(0)-G(1) Transition Mediated by a Skp2-Independent Ubiquitination Pathway. Journal of Biological Chemistry, 276, 48937-48943. https://doi.org/10.1074/jbc.M107274200
Hengst, L. (2004) A Second RING to Destroy p27Kip1. Nature Cell Biology, 6, 1153-1155. https://doi.org/10.1038/ncb1204-1153
Soos, T.J., Kiyokawa, H., Yan, J.S., et al. (1996) Formation of p27-CDK Complexes during the Human Mitotic Cell Cycle. Cell Growth and Differentiation, 7, 135-146.
Viglietto, G., Motti, M.L., Bruni, P., et al. (2002) Cytoplasmic Relocalization and Inhibition of the Cyclin-Dependent Kinase Inhibitor p27(Kip1) by PKB/Akt-Mediated Phosphorylation in Breast Cancer. Nature Medicine, 8, 1136-1144. https://doi.org/10.1038/nm762
Shin, I., Yakes, F.M., Rojo, F., et al. (2002) PKB/Akt Mediates Cell-Cycle Progression by Phosphorylation of p27(Kip1) at Threonine 15 and Modulation of Its Cellular Localization. Nature Medicine, 8, 1145-1152. https://doi.org/10.1038/nm759
Liang, J., Zubovitz, J., Petrocelli, T., et al. (2002) PKB/Akt Phosphorylates p27, Impairs Nuclear Import of p27 and Opposes p27-Mediated G1 Arrest. Nature Medicine, 8, 1153-1160. https://doi.org/10.1038/nm761
Connor, M.K., Kotchetkov, R., Cariou, S., et al. (2003) CRM1/RAN-Mediated Nuclear Export of p27 Kip1 Involves a Nuclear Export Signal Please Cite and Links p27 Export and Proteolysis. Molecular Biology of the Cell, 14, 201-213. https://doi.org/10.1091/mbc.e02-06-0319
Ciarallo, S., Subramanian, V., Hung, W., Lee, J.H., Kotchetkov, R., Sandhu, C., et al. (2002) Altered p27Kip1 Phosphorylation, Localization, and Function in Human Epithelial Cells Resistant to Transforming Growth Factor β-Mediated G1 Arrest. Molecular Cell Biology, 22, 2993-3002. https://doi.org/10.1128/MCB.22.9.2993-3002.2002
Chu, I., Sun, J., Arnaout, A., et al. (2007) p27 Phosphorylation by Src Regulates Inhibition of Cyclin E-Cdk2. Cell, 128, 281-294. https://doi.org/10.1016/j.cell.2006.11.049
Kazi, A., Carie, A., Blaskovich, M.A., Bucher, C., Thai, V., Moulder, S., et al. (2009) Blockade of Protein Geranylgeranylation Inhibits Cdk2-Dependent p27Kip1 Phosphorylation on Thr187 and Accumulates p27Kip1 in the Nucleus: Implications for Breast Cancer Therapy. Molecular Cell Biology, 29, 2254-2263. https://doi.org/10.1128/MCB.01029-08
Hsu, T.C., Nair, R., Tulsian, P., Camalier, C.E., Hegamyer, G.A., Young, M.R. and Colburn, N.H. (2001) Transformation Nonresponsive Cells Owe Their Resistance to Lack of p65/Nuclear Factor-κB Activation. Cancer Research, 61, 4160-4168.