new englad journal of medicine nicoletta tortolone 2012 epigenetic regulators

  1. Boyce, W. T., y M. S. Kobor. 2015. Development and the epigenome: The ‘synapse’ of gene-environment interplay. Developmental Science 18(1):1-23. https://doi.org/diez.1111/desc.12282
  2. Brantley, P. J., V. H. Myers, y H. J. Roy. 2005. Environmental and lifestyle influences on obesity. Periódico of Luisiana State Medical Society 157(Spec No 1):S19-S27. Available at: https://pubmed.ncbi.nlm.nih.gov/15751906/ (accessed July 17, 2020).
  3. Fraga, M. F., Y también. Ballestar, M. F. Paz, S. Ropero, F. Setien, M. L. Ballestar, D. Heine-Suner, J. C. Cigudosa, M. Urioste, J. Benitez, M. BoixChornet, A Sanchez-Aguilera, C. Ling, Y también. Carlsson, P. Poulsen, A. Vaag, Z. Stephan, T. D. Spector, Y. Z. Wu, C. Plass, y M. Esteller. 2005. Epigenetic differences arise A lo largo del lifetime of monozygotic twins. Proceedings de la National Academy of Sciences, USA 102: 10604-10609. https://doi.org/diez.1073/pnas.0500398102
  4. Gardner, K. R., C. Sapienza, y J. O. Fisher. 2015. Genetic and epigenetic asociations to obesity-related appetite phenotypes among African-American children. Pediatric Obesity diez(6):476-482. https://doi.org/diez.1111/ijpo.12010
  5. Herrera, B. M., S. Keildson, y C. M. Lindgren. 2011. Genetics and epigenetics of obesity. Maturitas 69: 41-49. https://doi.org/diez.1016/j.maturitas.2011.02.018
  6. Institute of Medicine and National Research Council. 2015. Examining en Developmental Approach to Childhood Obesity: Fetal y Early Childhood Years: Taller in Brief. Washington, DC: The National Academies Press. https://doi.org/diez.17226/21716
  7. Li, S., J. H. Zhao, J. Luan, C. Langenberg, R.N. 2011. Genetic predisposition to obesity leads to increased risk of type 2 diabetes. Diabetología 54(4):776-782. https://doi.org/diez.1007/s00125-011-2044-5
  8. Liu, X., Q. Chen, H. J. Tsai, G. Wang, X. Hong, Y. Zhou, C. Zhang , C. Liu, R. Liu, H. Wang, S. Zhang, Y también. Yu, K. K. Mestan, C. Pearson, P. Otlans, B. Zuckerman, y X. Wang. ADN methylation: Exploration of early life origins of disease. Environmental and Molecular Mutagenesis 55(3):223-30. https://doi.org/diez.1002/em.21827
  9. Marco A., T. Kisliouk, T. Tabachnik, N. Meiri, y A. Weller. 2014. Overweight and CpG methylation of the Pomc fomentar en offspring of high-fat-diet-fed dams no es “reprogrammed” para regular chow diet in rats. FASEB Journal 28(9):4148-4157. https://doi.org/diez.1096/fj.14-255620
  10. Meles, PA, Y. Wei, CC Wong, L. K. Sjoholm, Y también. Aberg, J. Mill, M. Schalling, I. Forsell , and C. Lavebratt. 2013. Genetic and epigenetic asociaciones de MAOA and NR3C1 with depression and childhood adversities. International Journal of Neuropsychopharmacology 16(7):1513-1528. https://doi.org/diez.1017/S1461145713000102
  11. Ogden, C. L., M. D. Carroll, B. K. Kit, y K. M. Flegal. 2014.

    médico

    Prevalencia de childhood and adult obesity in the United States, 2011-2012. JAMA 311(8):806-814. https://doi.org/diez.1001/jama.2014.732

  12. Ost A., A. Lempradl, Y también. Viviendas, M. Weigert, T. Tiko, M. Deniz, L. Pantano, U. Boenisch , P.M. Itskov, M. Stoeckius, M. Ruf, N. Rajewsky, G. Reuter, N. Iovino, C. Ribeiro, M. Alenius, S. Heyne, T. Vavouri, J. A. Pospisilik. 2014. Paternal diet defines offspring chromatin state and intergenerational obesity. Cell 159:1352-1364. https://doi.org/diez.1016/j.cell.2014.11.005
  13. Ozanne, S. Y también. 2015. Epigenetic firmas of obesity. The New England Journal of Medicine 372(diez):973-974. https://doi.org/diez.1056/NEJMcibr1414707
  14. Segata, N., S. K. Haake, P. Mannon, K. P. Lemon, L. Waldron, D. Gevers, C. Huttenhower, and J. 20 de adulto trato bacterial microbiome apoyado en seven mouth surfaces, tonos, throat and stool samples. Genome Biology 13:R42. https://doi.org/diez.1186/gigabytes-2012-13-6-r42
  15. Sharp, GC, Lawlor, RC Richmond, Fraser, Simpkin, M. Suderman, H. A. Lyttleton, W. McArdle Ring, T. R. Gaunt, G. Davey Smith, y C. L. Relton. 2015. Maternal pre-pregnancy BMI y gestational weight gain, offspring DNA methylation and later offspring adiposity: Findings from the Avon Longitudinal Study of Parents and Children. International Journal of Epidemiology 44(4):1288-1304. https://doi.org/diez.1093/ije/dyv042
  16. Soubry, A., S. K. Murphy, F. Wang, Z. Huang, A. C. Vidal, B. F. Fuemmeler, J. Kurtzberg, A. Murtha, R. L. Jirtle, J. M. Schildkraut, y C. Hoyo. Newborns of obese familiares había perturbado DNA methylation patterns at imprinted gens. International Journal of Obesity (London) 39(4):650-657. https://doi.org/diez.1038/ijo.2013.193.
  17. Wang, D., X. Liu, Y. Zhou, H. Xie, X. Hong, H. J. Tsai, G. Wang, R. Liu, y X. Wang. 2012. Individual variación y longitudinal pattern de genome-wide DNA methylation de birth to first 2 years of life. Epigenéticos: Official Journal of the DNA Methylation Society 7:594-605. https://doi.org/diez.4161/epi.20117
  18. A. Simen, A. Jackowski, D. Lipschitz, H. Douglas-Palumberi, M. Ge, F. Perepletchikova, y K. O’ Loughlin. 2014. Child abuse, depresión, y metylación en nada involved se stress, neural plasticity, y brain circuitry. Periódico de American Academy of Child and Adolescent Psychiatry 53(4):417-424, e415. https://doi.org/diez.1016/j.jaac.2013.12.025
  19. Whitaker, R. C., M. S. Pepe, J. A. Wright, K. D. Seidel, and W.H. Diez. 1998. Early adiposity rebound and risk of adult obesity. Pediatricos 101:E5. https://doi.org/diez.1542/peds.101.3.e5
  20. Witkos, M., M. Uttaburanont, C. D. Lang, y R. Arora. 2008. Costos and reasons for obesity. Periódico of the Cardiometabolic Syndrome 3(3):173-176. https://doi.org/diez.1111/j.1559-4572.2008.00012.x

Deja un comentario