Dtsch Med Wochenschr 2015; 140(24): 1805-1808
DOI: 10.1055/s-0041-108913
Klinischer Fortschritt
Endokrinologie
© Georg Thieme Verlag KG Stuttgart · New York

Leptin – ein Hormon mit vielen Facetten

The diversity of leptin
Knut Mai
1   Medizinische Klinik für Endokrinologie, Diabetes und Ernährungsmedizin, Charité – Universitätsmedizin Berlin
› Author Affiliations
Further Information

Publication History

Publication Date:
01 December 2015 (online)

Zusammenfassung

Leptin spielt eine zentrale Rolle in der neuroendokrinen Regulation der Energiehomöostase. Auch wenn der Stellenwert im Rahmen der Betreuung von adipösen Patienten in der Diagnostik und Therapie noch nicht völlig klar ist, hat der Einsatz von Leptin bei der Behandlung von einzelnen monogenen Adipositas-Formen aber entscheidende Fortschritte gebracht. Neben der Regulation des Energiestoffwechsels lassen die aktuellen Daten eine funktionelle Bedeutung von Leptin auch im Rahmen von intestinaler Nährstoffaufnahme, Blutdruckregulation, Fertilität, Inflammation und Autoimmunität vermuten. Daraus könnten sich in Zukunft weitere klinische und therapeutische Bedeutungen von Leptin ergeben.

Abstract

The role of leptin in regulation of energy homeostasis is well established, yet both the diagnostic as well as the therapeutic relevance of leptin in diet-induced obesity remains unresolved. Nevertheless, in the last few years, the substantial impact of leptin substitution in selected forms of monogenic obesity has advanced our knowledge about the neuroendocrine network of body weight regulation. Moreover, leptin seems to play a crucial role in intestinal nutrient reabsorption, regulation of blood pressure, fertility, inflammation and autoimmune diseases. A better understanding of these processes could possibly provide novel diagnostic and therapeutic options in the future.

 
  • Literatur

  • 1 Schwartz MW, Morton GJ. Obesity: keeping hunger at bay. Nature 2002; 418: 595-597
  • 2 Allison MB, Myers Jr MG. 20 years of leptin: connecting leptin signaling to biological function. J Endocrinol 2014; 223: T25-T35
  • 3 Sainz N, Barrenetxe J, Moreno-Aliaga MJ, Martinez JA. Leptin resistance and diet-induced obesity: central and peripheral actions of leptin. Metabolism 2015; 64: 35-46
  • 4 Rosenbaum M, Goldsmith R, Bloomfield D et al. Low-dose leptin reverses skeletal muscle, autonomic, and neuroendocrine adaptations to maintenance of reduced weight. J Clin Invest 2005; 115: 3579-3586
  • 5 Thaler JP, Yi CX, Schur EA et al. Obesity is associated with hypothalamic injury in rodents and humans. J Clin Invest 2012; 122: 153-162
  • 6 Sainz N, Rodriguez A, Catalan V et al. Leptin reduces the expression and increases the phosphorylation of the negative regulators of GLUT4 traffic TBC1D1 and TBC1D4 in muscle of ob / ob mice. PLoS One 2012; 7: e29389
  • 7 Lim K, Burke SL, Head GA. Obesity-related hypertension and the role of insulin and leptin in high-fat-fed rabbits. Hypertension 2013; 61: 628-634
  • 8 Bassi M, Furuya WI, Zoccal DB et al. Control of respiratory and cardiovascular functions by leptin. Life Sci 2015; 125: 25-31
  • 9 Vazquez MJ, Romero-Ruiz A, Tena-Sempere M. Roles of leptin in reproduction, pregnancy and polycystic ovary syndrome: consensus knowledge and recent developments. Metabolism 2015; 64: 79-91
  • 10 Gregoraszczuk EL, Rak A. Superactive human leptin antagonist reverses leptin-induced excessive progesterone and testosterone secretion in porcine ovarian follicles by blocking leptin receptors. J Physiol Pharmacol 2015; 66: 39-46
  • 11 Chang CC, Wu MJ, Yang JY et al. Leptin-STAT3-G9a Signaling Promotes Obesity-Mediated Breast Cancer Progression. Cancer Res 2015; 75: 2375-2386
  • 12 Procaccini C, Pucino V, Mantzoros CS, Matarese G. Leptin in autoimmune diseases. Metabolism 2015; 64: 92-104
  • 13 Karakose M, Karbek B, Sahin M et al. The association of autoimmune thyroiditis and non-functional adrenal incidentalomas with insulin resistance. Arch Endocrinol Metab 2015; 59: 42-46