Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Roberto Coppari is active.

Publication


Featured researches published by Roberto Coppari.


Neuron | 2004

Leptin receptor signaling in POMC neurons is required for normal body weight homeostasis

Nina Balthasar; Roberto Coppari; Julie E. McMinn; Shun M. Liu; Charlotte E. Lee; Vinsee Tang; Christopher D. Kenny; Robert A. McGovern; Streamson C. Chua; Joel K. Elmquist; Bradford B. Lowell

Neuroanatomical and electrophysiological studies have shown that hypothalamic POMC neurons are targets of the adipostatic hormone leptin. However, the physiological relevance of leptin signaling in these neurons has not yet been directly tested. Here, using the Cre/loxP system, we critically test the functional importance of leptin action on POMC neurons by deleting leptin receptors specifically from these cells in mice. Mice lacking leptin signaling in POMC neurons are mildly obese, hyperleptinemic, and have altered expression of hypothalamic neuropeptides. In summary, leptin receptors on POMC neurons are required but not solely responsible for leptins regulation of body weight homeostasis.


Cell Metabolism | 2012

SIRT1 is required for AMPK activation and the beneficial effects of resveratrol on mitochondrial function

Nathan L. Price; Ana P. Gomes; Alvin J.Y. Ling; Filipe V. Duarte; Alejandro Martin-Montalvo; Brian J. North; Beamon Agarwal; Lan Ye; Giorgio Ramadori; João S. Teodoro; Basil P. Hubbard; Ana Teresa Varela; James G. Davis; Behzad Varamini; Angela Hafner; Ruin Moaddel; Anabela P. Rolo; Roberto Coppari; Carlos M. Palmeira; Rafael de Cabo; Joseph A. Baur; David A. Sinclair

Resveratrol induces mitochondrial biogenesis and protects against metabolic decline, but whether SIRT1 mediates these benefits is the subject of debate. To circumvent the developmental defects of germline SIRT1 knockouts, we have developed an inducible system that permits whole-body deletion of SIRT1 in adult mice. Mice treated with a moderate dose of resveratrol showed increased mitochondrial biogenesis and function, AMPK activation, and increased NAD(+) levels in skeletal muscle, whereas SIRT1 knockouts displayed none of these benefits. A mouse overexpressing SIRT1 mimicked these effects. A high dose of resveratrol activated AMPK in a SIRT1-independent manner, demonstrating that resveratrol dosage is a critical factor. Importantly, at both doses of resveratrol no improvements in mitochondrial function were observed in animals lacking SIRT1. Together these data indicate that SIRT1 plays an essential role in the ability of moderate doses of resveratrol to stimulate AMPK and improve mitochondrial function both in vitro and in vivo.


Nature | 2007

Glucose sensing by POMC neurons regulates glucose homeostasis and is impaired in obesity

Laura E. Parton; Chian Ping Ye; Roberto Coppari; Pablo J. Enriori; Brian Choi; Chen Yu Zhang; Chun Xu; Claudia R. Vianna; Nina Balthasar; Charlotte E. Lee; Joel K. Elmquist; Michael Cowley; Bradford B. Lowell

A subset of neurons in the brain, known as ‘glucose-excited’ neurons, depolarize and increase their firing rate in response to increases in extracellular glucose. Similar to insulin secretion by pancreatic β-cells, glucose excitation of neurons is driven by ATP-mediated closure of ATP-sensitive potassium (KATP) channels. Although β-cell-like glucose sensing in neurons is well established, its physiological relevance and contribution to disease states such as type 2 diabetes remain unknown. To address these issues, we disrupted glucose sensing in glucose-excited pro-opiomelanocortin (POMC) neurons via transgenic expression of a mutant Kir6.2 subunit (encoded by the Kcnj11 gene) that prevents ATP-mediated closure of KATP channels. Here we show that this genetic manipulation impaired the whole-body response to a systemic glucose load, demonstrating a role for glucose sensing by POMC neurons in the overall physiological control of blood glucose. We also found that glucose sensing by POMC neurons became defective in obese mice on a high-fat diet, suggesting that loss of glucose sensing by neurons has a role in the development of type 2 diabetes. The mechanism for obesity-induced loss of glucose sensing in POMC neurons involves uncoupling protein 2 (UCP2), a mitochondrial protein that impairs glucose-stimulated ATP production. UCP2 negatively regulates glucose sensing in POMC neurons. We found that genetic deletion of Ucp2 prevents obesity-induced loss of glucose sensing, and that acute pharmacological inhibition of UCP2 reverses loss of glucose sensing. We conclude that obesity-induced, UCP2-mediated loss of glucose sensing in glucose-excited neurons might have a pathogenic role in the development of type 2 diabetes.


Journal of Clinical Investigation | 2005

Mice lacking ghrelin receptors resist the development of diet-induced obesity

Jeffrey M. Zigman; Yoshihide Nakano; Roberto Coppari; Nina Balthasar; Jacob N. Marcus; Charlotte E. Lee; Juli E. Jones; Amy E. Deysher; Amanda R. Waxman; Ryan D. White; Todd D. Williams; Jennifer Lachey; Randy J. Seeley; Bradford B. Lowell; Joel K. Elmquist

Ghrelin is the endogenous ligand for the growth hormone secretagogue receptor (GHSR; ghrelin receptor). Since its discovery, accumulating evidence has suggested that ghrelin may play a role in signaling and reversing states of energy insufficiency. For example, ghrelin levels rise following food deprivation, and ghrelin administration stimulates feeding and increases body weight and adiposity. However, recent loss-of-function studies have raised questions regarding the physiological significance of ghrelin in regulating these processes. Here, we present results of a study using a novel GHSR-null mouse model, in which ghrelin administration fails to acutely stimulate food intake or activate arcuate nucleus neurons. We show that when fed a high-fat diet, both female and male GHSR-null mice eat less food, store less of their consumed calories, preferentially utilize fat as an energy substrate, and accumulate less body weight and adiposity than control mice. Similar effects on body weight and adiposity were also observed in female, but not male, GHSR-null mice fed standard chow. GHSR deletion also affected locomotor activity and levels of glycemia. These findings support the hypothesis that ghrelin-responsive pathways are an important component of coordinated body weight control. Moreover, our data suggest that ghrelin signaling is required for development of the full phenotype of diet-induced obesity.


The Journal of Comparative Neurology | 2005

Identifying hypothalamic pathways controlling food intake, body weight, and glucose homeostasis

Joel K. Elmquist; Roberto Coppari; Nina Balthasar; Masumi Ichinose; Bradford B. Lowell

The past decade has greatly increased our understanding and appreciation of the ability of the central nervous system (CNS) to regulate food intake and body weight. This was spearheaded by the discovery of key molecules regulating body weight homeostasis. It is now also apparent that the CNS, especially the hypothalamus, plays a primary role in directly regulating glucose homeostasis, independently of effects on body weight. These discoveries are important given the increasing incidences of obesity and type II diabetes in Western societies. In this article, we will highlight recent data from genetically modified mice. These data and other models have helped to dissect the CNS pathways regulating body weight and glucose homeostasis. Finally, although these studies have been illustrative, they also underscore our relative lack of knowledge and highlight the need for more definitive approaches to unravel the functional significance of these pathways. J. Comp. Neurol. 493:63–71, 2005.


Journal of Clinical Investigation | 2008

Acute effects of leptin require PI3K signaling in hypothalamic proopiomelanocortin neurons in mice

Jennifer W. Hill; Kevin W. Williams; Chianping Ye; Ji Luo; Nina Balthasar; Roberto Coppari; Michael Cowley; Lewis C. Cantley; Bradford B. Lowell; Joel K. Elmquist

Normal food intake and body weight homeostasis require the direct action of leptin on hypothalamic proopiomelanocortin (POMC) neurons. It has been proposed that leptin action requires PI3K activity. We therefore assessed the contribution of PI3K signaling to leptins effects on POMC neurons and organismal energy balance. Leptin caused a rapid depolarization of POMC neurons and an increase in action potential frequency in patch-clamp recordings of hypothalamic slices. Pharmacologic inhibition of PI3K prevented this depolarization and increased POMC firing rate, indicating a PI3K-dependent mechanism of leptin action. Mice with genetically disrupted PI3K signaling in POMC cells failed to undergo POMC depolarization or increased firing frequency in response to leptin. Insulins ability to hyperpolarize POMC neurons was also abolished in these mice. Moreover, targeted disruption of PI3K blunted the suppression of feeding elicited by central leptin administration. Despite these differences, mice with impaired PI3K signaling in POMC neurons exhibited normal long-term body weight regulation. Collectively, these results suggest that PI3K signaling in POMC neurons is essential for leptin-induced activation and insulin-induced inhibition of POMC cells and for the acute suppression of food intake elicited by leptin, but is not a major contributor to the regulation of long-term organismal energy homeostasis.


Cell Metabolism | 2010

Direct insulin and leptin action on pro-opiomelanocortin neurons is required for normal glucose homeostasis and fertility.

Jennifer W. Hill; Carol F. Elias; Makoto Fukuda; Kevin W. Williams; Eric D. Berglund; William L. Holland; You Ree Cho; Jen Chieh Chuang; Yong Xu; Michelle J. Choi; Danielle Lauzon; Charlotte E. Lee; Roberto Coppari; James A. Richardson; Jeffrey M. Zigman; Streamson C. Chua; Philipp E. Scherer; Bradford B. Lowell; Jens C. Brüning; Joel K. Elmquist

Circulating leptin and insulin convey information regarding energy stores to the central nervous system, particularly the hypothalamus. Hypothalamic pro-opiomelanocortin (POMC) neurons regulate energy balance and glucose homeostasis and express leptin and insulin receptors. However, the physiological significance of concomitant leptin and insulin action on POMC neurons remains to be established. Here, we show that mice lacking both leptin and insulin receptors in POMC neurons (Pomc-Cre, Lepr(flox/flox) IR(flox/flox) mice) display systemic insulin resistance, which is distinct from the single deletion of either receptor. In addition, Pomc-Cre, Lepr(flox/flox) IR(flox/flox) female mice display elevated serum testosterone levels and ovarian abnormalities, resulting in reduced fertility. We conclude that direct action of insulin and leptin on POMC neurons is required to maintain normal glucose homeostasis and reproductive function.


Journal of Clinical Investigation | 2006

Enhanced PIP3 signaling in POMC neurons causes KATP channel activation and leads to diet-sensitive obesity

Leona Plum; Xiaosong Ma; Brigitte Hampel; Nina Balthasar; Roberto Coppari; Heike Münzberg; Marya Shanabrough; Denis Burdakov; Eva Rother; Ruth Janoschek; Jens Alber; Bengt F. Belgardt; Linda Koch; Jost Seibler; Frieder Schwenk; Csaba Fekete; Akira Suzuki; Tak W. Mak; Wilhelm Krone; Tamas L. Horvath; Frances M. Ashcroft; Jens C. Brüning

Leptin and insulin have been identified as fuel sensors acting in part through their hypothalamic receptors to inhibit food intake and stimulate energy expenditure. As their intracellular signaling converges at the PI3K pathway, we directly addressed the role of phosphatidylinositol3,4,5-trisphosphate-mediated (PIP3-mediated) signals in hypothalamic proopiomelanocortin (POMC) neurons by inactivating the gene for the PIP3 phosphatase Pten specifically in this cell type. Here we show that POMC-specific disruption of Pten resulted in hyperphagia and sexually dimorphic diet-sensitive obesity. Although leptin potently stimulated Stat3 phosphorylation in POMC neurons of POMC cell-restricted Pten knockout (PPKO) mice, it failed to significantly inhibit food intake in vivo. POMC neurons of PPKO mice showed a marked hyperpolarization and a reduction in basal firing rate due to increased ATP-sensitive potassium (KATP) channel activity. Leptin was not able to elicit electrical activity in PPKO POMC neurons, but application of the PI3K inhibitor LY294002 and the KATP blocker tolbutamide restored electrical activity and leptin-evoked firing of POMC neurons in these mice. Moreover, icv administration of tolbutamide abolished hyperphagia in PPKO mice. These data indicate that PIP3-mediated signals are critical regulators of the melanocortin system via modulation of KATP channels.


Nature Neuroscience | 2007

EP3 prostaglandin receptors in the median preoptic nucleus are critical for fever responses

Michael Lazarus; Kyoko Yoshida; Roberto Coppari; Caroline E. Bass; Takatoshi Mochizuki; Bradford B. Lowell; Clifford B. Saper

Fever is a result of the action of prostaglandin E2 (PGE2) on the brain and appears to require EP3 prostaglandin receptors (EP3Rs), but the specific neurons on which PGE2 acts to produce fever have not been definitively established. Here we report that selective genetic deletion of the EP3Rs in the median preoptic nucleus of mice resulted in abrogation of the fever response. These observations demonstrate that the EP3R-bearing neurons in the median preoptic nucleus are required for fever responses.


Journal of Clinical Investigation | 2011

Leptin’s effect on puberty in mice is relayed by the ventral premammillary nucleus and does not require signaling in Kiss1 neurons

Jose Donato; Roberta M. Cravo; Renata Frazão; Laurent Gautron; Michael M. Scott; Jennifer Lachey; Inar Alves de Castro; Lisandra O. Margatho; Syann Lee; Charlotte E. Lee; James A. Richardson; Jeffrey M. Friedman; Streamson C. Chua; Roberto Coppari; Jeffrey M. Zigman; Joel K. Elmquist; Carol F. Elias

Studies in humans and rodents indicate that a minimum amount of stored energy is required for normal pubertal development. The adipocyte-derived hormone leptin is a key metabolic signal to the neuroendocrine reproductive axis. Humans and mice lacking leptin or the leptin receptor (LepR) (ob/ob and db/db mice, respectively) are infertile and fail to enter puberty. Leptin administration to leptin-deficient subjects and ob/ob mice induces puberty and restores fertility, but the exact site or sites of leptin action are unclear. Here, we found that genetic deletion of LepR selectively from hypothalamic Kiss1 neurons in mice had no effect on puberty or fertility, indicating that direct leptin signaling in Kiss1 neurons is not required for these processes. However, bilateral lesions of the ventral premammillary nucleus (PMV) of ob/ob mice blunted the ability of exogenous leptin to induce sexual maturation. Moreover, unilateral reexpression of endogenous LepR in PMV neurons was sufficient to induce puberty and improve fertility in female LepR-null mice. This LepR reexpression also normalized the increased hypothalamic GnRH content characteristic of leptin-signaling deficiency. These data suggest that the PMV is a key site for leptins permissive action at the onset of puberty and support the hypothesis that the multiple actions of leptin to control metabolism and reproduction are anatomically dissociated.

Collaboration


Dive into the Roberto Coppari's collaboration.

Top Co-Authors

Avatar

Joel K. Elmquist

University of Texas Southwestern Medical Center

View shared research outputs
Top Co-Authors

Avatar

Giorgio Ramadori

University of Texas Southwestern Medical Center

View shared research outputs
Top Co-Authors

Avatar

Bradford B. Lowell

Beth Israel Deaconess Medical Center

View shared research outputs
Top Co-Authors

Avatar

Charlotte E. Lee

University of Texas Southwestern Medical Center

View shared research outputs
Top Co-Authors

Avatar

Claudia R. Vianna

University of Texas Southwestern Medical Center

View shared research outputs
Top Co-Authors

Avatar

Teppei Fujikawa

University of Texas Southwestern Medical Center

View shared research outputs
Top Co-Authors

Avatar

Streamson C. Chua

Albert Einstein College of Medicine

View shared research outputs
Top Co-Authors

Avatar

Jason G. Anderson

University of Texas Southwestern Medical Center

View shared research outputs
Top Co-Authors

Avatar

Nina Balthasar

Beth Israel Deaconess Medical Center

View shared research outputs
Top Co-Authors

Avatar

Eric D. Berglund

University of Texas Southwestern Medical Center

View shared research outputs
Researchain Logo
Decentralizing Knowledge