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PLOS ONE  2012 

Over-Expression of Leptin Receptors in Hypothalamic POMC Neurons Increases Susceptibility to Diet-Induced Obesity

DOI: 10.1371/journal.pone.0030485

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Abstract:

Diet-induced obesity (DIO) in rodents is characterized by impaired activation of signal-transducer and activator of transcription 3 (STAT3) by leptin receptors (LepRb) within the hypothalamic arcuate nucleus. This signaling defect likely plays an important role in development of DIO. However, the neuro-chemical identity of the leptin-STAT3 resistant arcuate neurons has not been determined and the underlying mechanisms responsible for development of cellular leptin resistance remain unclear. To investigate this, we first measured arcuate gene expression of known key signaling components of the LepRb signaling pathway and tested whether specifically the critical arcuate pro-opiomelanocortin (POMC) neurons are resistant to LepRb-STAT3 signaling in mice given a high-fat-diet (HFD) compared to mice provided a low-fat control diet (LFD). We found that leptin-dependent STAT3 phosphorylation was decreased within POMC neurons of HFD mice. In addition, Leprb mRNA and suppressor of cytokine signaling 3 (Socs3) mRNA were elevated in the arcuate of HFD mice. To investigate whether increased LepRb expression per se in POMC neurons can influence development of DIO and Socs3 expression, we created mice that over-express LepRb selectively in POMC neurons (POMC-LepRb). No differences in body weight, fat mass or food intake were found between LFD POMC-LepRb mice and LFD controls. Surprisingly, body weight, fat mass and caloric intake of HFD POMC-LepRb mice was markedly higher than HFD control mice. In addition, arcuate Socs3 mRNA was increased in HFD POMC-LepRb mice compared to HFD controls. These data show that specifically POMC neurons of DIO mice are resistant to STAT3 activation by leptin, indicating that those cells might play a role in development of DIO. Furthermore, over-expression of LepRb selectively in POMC neurons increases susceptibility to the development of DIO. We propose a model where over-reactivity of the leptin-LepRb signaling system in arcuate neurons may play causal a role in development of diet-induced obesity.

References

[1]  Friedman JM (2000) Obesity in the new millennium. Nature 404: 632–634.
[2]  Bj?rb?k C (2009) Central leptin receptor action and resistance in obesity. J Investig Med 57: 789–794.
[3]  Munzberg H, Huo L, Nillni EA, Hollenberg AN, Bj?rb?k C (2003) Role of signal transducer and activator of transcription 3 in regulation of hypothalamic proopiomelanocortin gene expression by leptin. Endocrinology 144: 2121–2131.
[4]  Scott MM, Lachey JL, Sternson SM, Lee CE, Elias CF, et al. (2009) Leptin targets in the mouse brain. J Comp Neurol 514: 518–532.
[5]  Satoh N, Ogawa Y, Katsuura G, Hayase M, Tsuji T, et al. (1997) The arcuate nucleus as a primary site of satiety effect of leptin in rats. Neurosci Lett 224: 149–152.
[6]  Morton GJ, Niswender KD, Rhodes CJ, Myers MG Jr, Blevins JE, et al. (2003) Arcuate nucleus-specific leptin receptor gene therapy attenuates the obesity phenotype of Koletsky (fa(k)/fa(k)) rats. Endocrinology 144: 2016–2024.
[7]  Coppari R, Ichinose M, Lee CE, Pullen AE, Kenny CD, et al. (2005) The hypothalamic arcuate nucleus: a key site for mediating leptin's effects on glucose homeostasis and locomotor activity. Cell Metab 1: 63–72.
[8]  Schwartz MW, Woods SC, Porte D Jr, Seeley RJ, Baskin DG (2000) Central nervous system control of food intake. Nature 404: 661–671.
[9]  Cowley MA, Smart JL, Rubinstein M, Cerdan MG, Diano S, et al. (2001) Leptin activates anorexigenic POMC neurons through a neural network in the arcuate nucleus. Nature 411: 480–484.
[10]  Cone RD (2005) Anatomy and regulation of the central melanocortin system. Nat Neurosci 8: 571–578.
[11]  Low MJ (2004) Role of proopiomelanocortin neurons and peptides in the regulation of energy homeostasis. J Endocrinol Invest 27: 95–100.
[12]  Ollmann MM, Wilson BD, Yang YK, Kerns JA, Chen Y, et al. (1997) Antagonism of central melanocortin receptors in vitro and in vivo by agouti-related protein. Science 278: 135–138.
[13]  Wilson BD, Bagnol D, Kaelin CB, Ollmann MM, Gantz I, et al. (1999) Physiological and anatomical circuitry between Agouti-related protein and leptin signaling. Endocrinology 140: 2387–2397.
[14]  Balthasar N, Coppari R, McMinn J, Liu SM, Lee CE, et al. (2004) Leptin receptor signaling in POMC neurons is required for normal body weight homeostasis. Neuron 42: 983–991.
[15]  van de Wall E, Leshan R, Xu AW, Balthasar N, Coppari R, et al. (2008) Collective and individual functions of leptin receptor modulated neurons controlling metabolism and ingestion. Endocrinology 149: 1773–1785.
[16]  Huo L, Gamber K, Greeley S, Silva J, Huntoon N, et al. (2009) Leptin-dependent control of glucose balance and locomotor activity by POMC neurons. Cell Metab 9: 537–547.
[17]  Bj?rb?k C, Uotani S, da Silva B, Flier JS (1997) Divergent signaling capacities of the long and short isoforms of the leptin receptor. J Biol Chem 272: 32686–32695.
[18]  Banks AS, Davis SM, Bates SH, Myers MG Jr (2000) Activation of downstream signals by the long form of the leptin receptor. J Biol Chem 275: 14563–14572.
[19]  Bj?rb?k C, Elmquist JK, Frantz JD, Shoelson SE, Flier JS (1998) Identification of SOCS-3 as a potential mediator of central leptin resistance. Mol Cell 1: 619–625.
[20]  Guo F, Bakal K, Minokoshi Y, Hollenberg AN (2004) Leptin signaling targets the thyrotropin-releasing hormone gene promoter in vivo. Endocrinology 145: 2221–2227.
[21]  Isobe A, Takeda T, Sakata M, Yamamoto T, Minekawa R, et al. (2006) STAT3-mediated constitutive expression of SOCS3 in an undifferentiated rat trophoblast-like cell line. Placenta 27: 912–918.
[22]  Howard JK, Cave BJ, Oksanen LJ, Tzameli I, Bj?rb?k C, et al. (2004) Enhanced leptin sensitivity and attenuation of diet-induced obesity in mice with haploinsufficiency of Socs3. Nat Med 10: 734–738.
[23]  Mori H, Hanada R, Hanada T, Aki D, Mashima R, et al. (2004) Socs3 deficiency in the brain elevates leptin sensitivity and confers resistance to diet-induced obesity. Nat Med 10: 739–743.
[24]  Yamamoto T, Sekine Y, Kashima K, Kubota A, Sato N, et al. (2002) The nuclear isoform of protein-tyrosine phosphatase TC-PTP regulates interleukin-6-mediated signaling pathway through STAT3 dephosphorylation. Biochem Biophys Res Commun 297: 811–817.
[25]  Wang S, Raven JF, Baltzis D, Kazemi S, Brunet DV, et al. (2006) The catalytic activity of the eukaryotic initiation factor-2alpha kinase PKR is required to negatively regulate Stat1 and Stat3 via activation of the T-cell protein-tyrosine phosphatase. J Biol Chem 281: 9439–9449.
[26]  Cheng A, Uetani N, Simoncic PD, Chaubey VP, Lee-Loy A, et al. (2002) Attenuation of leptin action and regulation of obesity by protein tyrosine phosphatase 1B. Dev Cell 2: 497–503.
[27]  Zabolotny JM, Bence-Hanulec KK, Stricker-Krongrad A, Haj F, Wang Y, et al. (2002) PTP1B regulates leptin signal transduction in vivo. Dev Cell 2: 489–95.
[28]  Halaas JL, Boozer C, Blair-West J, Fidahusein N, Denton DA, et al. (1997) Physiological response to long-term peripheral and central leptin infusion in lean and obese mice. Proc Natl Acad Sci U S A 94: 8878–8883.
[29]  Lin S, Storlien LH, Huang XF (2000) Leptin receptor, NPY, POMC mRNA expression in the diet-induced obese mouse brain. Brain Res 875: 89–95.
[30]  El-Haschimi K, Pierroz DD, Hileman SM, Bj?rb?k C, Flier JS (2000) Two defects contribute to hypothalamic leptin resistance in mice with diet-induced obesity. J Clin Invest 105: 1827–1832.
[31]  Munzberg H, Flier JS, Bj?rb?k C (2004) Region-specific leptin resistance within the hypothalamus of diet-induced obese mice. Endocrinology 145: 4880–4889.
[32]  Levin BE, Dunn-Meynell AA, Banks WA (2004) Obesity-prone rats have normal blood-brain barrier transport but defective central leptin signaling before obesity onset. Am J Physiol Regul Integr Comp Physiol 286: R143–150.
[33]  Lambert PD, Anderson KD, Sleeman MW, Wong V, Tan J, et al. (2001) Ciliary neurotrophic factor activates leptin-like pathways and reduces body fat, without cachexia or rebound weight gain, even in leptin-resistant obesity. Proc Natl Acad Sci U S A 98: 4652–4657.
[34]  Kleinridders A, Schenten D, K?nner AC, Belgardt BF, Mauer J, et al. (2009) MyD88 signaling in the CNS is required for development of fatty acid-induced leptin resistance and diet-induced obesity. Cell Metab 10: 249–59.
[35]  Kievit P, Howard JK, Badman MK, Balthasar N, Coppari R, et al. (2006) Enhanced leptin sensitivity and improved glucose homeostasis in mice lacking suppressor of cytokine signaling-3 in POMC-expressing cells. Cell Metab 4: 123–132.
[36]  Reed AS, Unger EK, Olofsson LE, Piper ML, Myers MG Jr, et al. (2010) Functional role of suppressor of cytokine signaling 3 upregulation in hypothalamic leptin resistance and long-term energy homeostasis. Diabetes 59: 894–906.
[37]  Loh K, Fukushima A, Zhang X, Galic S, Briggs D, et al. (2011) Elevated hypothalamic TCPTP in obesity contributes to cellular leptin resistance. Cell Metab 14: 684–99.
[38]  White CL, Whittington A, Barnes MJ, Wang Z, Bray GA, et al. (2009) HF diets increase hypothalamic PTP1B and induce leptin resistance through both leptin-dependent and -independent mechanisms. Am J Physiol Endocrinol Metab 296: E291–9.
[39]  Picardi PK, Calegari VC, Prada Pde O, Moraes JC, Araújo E, et al. (2008) Reduction of hypothalamic protein tyrosine phosphatase improves insulin and leptin resistance in diet-induced obese rats. Endocrinology 149: 3870–80.
[40]  Banno R, Zimmer D, De Jonghe BC, Atienza M, Rak K, et al. (2010) PTP1B and SHP2 in POMC neurons reciprocally regulate energy balance in mice. J Clin Invest 120: 720–34.
[41]  Lam NT, Lewis JT, Cheung AT, Luk CT, Tse J, et al. (2004) Leptin increases hepatic insulin sensitivity and protein tyrosine phosphatase 1B expression. Mol Endocrinol 18: 1333–45.
[42]  Zabolotny JM, Kim YB, Welsh LA, Kershaw EE, Neel BG, et al. (2008) Protein-tyrosine phosphatase 1B expression is induced by inflammation in vivo. J Biol Chem 283: 14230–41.
[43]  White CL, Whittington A, Barnes MJ, Wang Z, Bray GA, et al. (2009) HF diets increase hypothalamic PTP1B and induce leptin resistance through both leptin-dependent and -independent mechanisms. Am J Physiol Endocrinol Metab 296: E291–9.
[44]  Huang XF, Han M, Storlien LH (2003) The level of NPY receptor mRNA expression in diet-induced obese and resistant mice. Brain Res Mol Brain Res 115: 21–8.
[45]  Huang XF, Xin X, McLennan P, Storlien L (2004) Role of fat amount and type in ameliorating diet-induced obesity: insights at the level of hypothalamic arcuate nucleus leptin receptor, neuropeptide Y and pro-opiomelanocortin mRNA expression. Diabetes Obes Metab 6: 35–44.
[46]  Bj?rb?k C, El-Haschimi K, Frantz JD, Flier JS (1999) The role of SOCS-3 in leptin signaling and leptin resistance. J Biol Chem 274: 30059–30065.
[47]  Knight ZA, Hannan KS, Greenberg ML, Friedman JM (2010) Hyperleptinemia is required for the development of leptin resistance. PLoS One 5: e11376.
[48]  Qiu J, Ogus S, Lu R, Chehab FF (2001) Transgenic mice overexpressing leptin accumulate adipose mass at an older, but not younger, age. Endocrinology 142: 348–58.
[49]  Ogus S, Ke Y, Qiu J, Wang B, Chehab FF (2003) Hyperleptinemia precipitates diet-induced obesity in transgenic mice overexpressing leptin. Endocrinology 144: 2865–9.
[50]  Metlakunta AS, Sahu M, Sahu A (2008) Hypothalamic phosphatidylinositol 3-kinase pathway of leptin signaling is impaired during the development of diet-induced obesity in FVB/N mice. Endocrinology 149: 1121–8.
[51]  Enriori PJ, Evans AE, Sinnayah P, Jobst EE, Tonelli-Lemos L, et al. (2007) Diet-induced obesity causes severe but reversible leptin resistance in arcuate melanocortin neurons. Cell Metab 5: 181–194.
[52]  Ricci MR, Levin BE (2003) Ontogeny of diet-induced obesity in selectively bred Sprague-Dawley rats. Am J Physiol Regul Integr Comp Physiol 285: R610–8.
[53]  Sahu A, Nguyen L, O'Doherty RM (2002) Nutritional regulation of hypothalamic leptin receptor gene expression is defective in diet-induced obesity. J Neuroendocrinol 14: 887–93.
[54]  Baskin DG, Breininger JF, Schwartz MW (2000) SOCS-3 expression in leptin-sensitive neurons of the hypothalamus of fed and fasted rats. Regul Pept 92: 9–15.
[55]  Ernst MB, Wunderlich CM, Hess S, Paehler M, Mesaros A, et al. (2009) Enhanced Stat3 activation in POMC neurons provokes negative feedback inhibition of leptin and insulin signaling in obesity. J Neurosci 29: 11582–11593.
[56]  Bouret SG, Gorski JN, Patterson CM, Chen S, Levin BE, et al. (2008) Hypothalamic neural projections are permanently disrupted in diet-induced obese rats. Cell Metab 7: 179–85.
[57]  Starr R, Hilton DJ (1998) SOCS: suppressors of cytokine signalling. Int J Biochem Cell Biol 30: 1081–1085.
[58]  Fain JN (2006) Release of interleukins and other inflammatory cytokines by human adipose tissue is enhanced in obesity and primarily due to the nonfat cells. Vitam Horm 74: 443–477.
[59]  Velloso LA, Araujo EP, de Souza CT (2008) Diet-induced inflammation of the hypothalamus in obesity. Neuroimmunomodulation 15: 189–193.
[60]  Bradley RL, Fisher FF, Maratos-Flier E (2008) Dietary fatty acids differentially regulate production of TNF-alpha and IL-10 by murine 3T3-L1 adipocytes. Obesity (Silver Spring) 16: 938–944.

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