Literature DB >> 23457303

Neuronal Sirt1 deficiency increases insulin sensitivity in both brain and peripheral tissues.

Min Lu1, David A Sarruf, Pingping Li, Olivia Osborn, Manuel Sanchez-Alavez, Saswata Talukdar, Ai Chen, Gautam Bandyopadhyay, Jianfeng Xu, Hidetaka Morinaga, Kevin Dines, Steven Watkins, Karl Kaiyala, Michael W Schwartz, Jerrold M Olefsky.   

Abstract

Sirt1 is a NAD(+)-dependent class III deacetylase that functions as a cellular energy sensor. In addition to its well-characterized effects in peripheral tissues, emerging evidence suggests that neuronal Sirt1 activity plays a role in the central regulation of energy balance and glucose metabolism. To assess this idea, we generated Sirt1 neuron-specific knockout (SINKO) mice. On both standard chow and HFD, SINKO mice were more insulin sensitive than Sirt1(f/f) mice. Thus, SINKO mice had lower fasting insulin levels, improved glucose tolerance and insulin tolerance, and enhanced systemic insulin sensitivity during hyperinsulinemic euglycemic clamp studies. Hypothalamic insulin sensitivity of SINKO mice was also increased over controls, as assessed by hypothalamic activation of PI3K, phosphorylation of Akt and FoxO1 following systemic insulin injection. Intracerebroventricular injection of insulin led to a greater systemic effect to improve glucose tolerance and insulin sensitivity in SINKO mice compared with controls. In line with the in vivo results, insulin-induced AKT and FoxO1 phosphorylation were potentiated by inhibition of Sirt1 in a cultured hypothalamic cell line. Mechanistically, this effect was traced to a reduced effect of Sirt1 to directly deacetylate and repress IRS-1 function. The enhanced central insulin signaling in SINKO mice was accompanied by increased insulin receptor signal transduction in liver, muscle, and adipose tissue. In summary, we conclude that neuronal Sirt1 negatively regulates hypothalamic insulin signaling, leading to systemic insulin resistance. Interventions that reduce neuronal Sirt1 activity have the potential to improve systemic insulin action and limit weight gain on an obesigenic diet.

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Year:  2013        PMID: 23457303      PMCID: PMC3624452          DOI: 10.1074/jbc.M112.443606

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  54 in total

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Authors:  Domenico Accili; Karen C Arden
Journal:  Cell       Date:  2004-05-14       Impact factor: 41.582

2.  Brain insulin controls adipose tissue lipolysis and lipogenesis.

Authors:  Thomas Scherer; James O'Hare; Kelly Diggs-Andrews; Martina Schweiger; Bob Cheng; Claudia Lindtner; Elizabeth Zielinski; Prashant Vempati; Kai Su; Shveta Dighe; Thomas Milsom; Michelle Puchowicz; Ludger Scheja; Rudolf Zechner; Simon J Fisher; Stephen F Previs; Christoph Buettner
Journal:  Cell Metab       Date:  2011-02-02       Impact factor: 27.287

3.  Hypothalamic Sirt1 regulates food intake in a rodent model system.

Authors:  Işin Cakir; Mario Perello; Omar Lansari; Norma J Messier; Charles A Vaslet; Eduardo A Nillni
Journal:  PLoS One       Date:  2009-12-15       Impact factor: 3.240

4.  Immortalization of hypothalamic GnRH neurons by genetically targeted tumorigenesis.

Authors:  P L Mellon; J J Windle; P C Goldsmith; C A Padula; J L Roberts; R I Weiner
Journal:  Neuron       Date:  1990-07       Impact factor: 17.173

5.  Adipose-specific deletion of stearoyl-CoA desaturase 1 up-regulates the glucose transporter GLUT1 in adipose tissue.

Authors:  Chang-Kee Hyun; Eun-Do Kim; Matthew T Flowers; Xueqing Liu; Eunha Kim; Maggie Strable; James M Ntambi
Journal:  Biochem Biophys Res Commun       Date:  2010-07-22       Impact factor: 3.575

6.  Feedback regulation of hepatic gluconeogenesis through modulation of SHP/Nr0b2 gene expression by Sirt1 and FoxO1.

Authors:  Dan Wei; Rongya Tao; Yao Zhang; Morris F White; X Charlie Dong
Journal:  Am J Physiol Endocrinol Metab       Date:  2010-11-16       Impact factor: 4.310

7.  Stearoyl-CoA desaturase-1 is associated with insulin resistance in morbidly obese subjects.

Authors:  Sara García-Serrano; Inmaculada Moreno-Santos; Lourdes Garrido-Sánchez; Carolina Gutierrez-Repiso; Jose M García-Almeida; Juan García-Arnés; Jose Rivas-Marín; Jose L Gallego-Perales; Eva García-Escobar; Gemma Rojo-Martinez; Francisco Tinahones; Federico Soriguer; Manuel Macias-Gonzalez; Eduardo García-Fuentes
Journal:  Mol Med       Date:  2010-11-05       Impact factor: 6.354

8.  Neuronal SIRT1 regulates endocrine and behavioral responses to calorie restriction.

Authors:  Dena E Cohen; Andrea M Supinski; Michael S Bonkowski; Gizem Donmez; Leonard P Guarente
Journal:  Genes Dev       Date:  2009-12-15       Impact factor: 11.361

Review 9.  Mammalian sirtuins: biological insights and disease relevance.

Authors:  Marcia C Haigis; David A Sinclair
Journal:  Annu Rev Pathol       Date:  2010       Impact factor: 23.472

10.  Hypothalamic AMP-activated protein kinase regulates glucose production.

Authors:  Clair S Yang; Carol K L Lam; Madhu Chari; Grace W C Cheung; Andrea Kokorovic; Sun Gao; Isabelle Leclerc; Guy A Rutter; Tony K T Lam
Journal:  Diabetes       Date:  2010-08-03       Impact factor: 9.461

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  27 in total

1.  The Nutrient and Energy Sensor Sirt1 Regulates the Hypothalamic-Pituitary-Adrenal (HPA) Axis by Altering the Production of the Prohormone Convertase 2 (PC2) Essential in the Maturation of Corticotropin-releasing Hormone (CRH) from Its Prohormone in Male Rats.

Authors:  Anika M Toorie; Nicole E Cyr; Jennifer S Steger; Ross Beckman; George Farah; Eduardo A Nillni
Journal:  J Biol Chem       Date:  2016-01-11       Impact factor: 5.157

2.  Advanced glycation end products, dementia, and diabetes.

Authors:  Simon Lovestone; Ulf Smith
Journal:  Proc Natl Acad Sci U S A       Date:  2014-03-25       Impact factor: 11.205

3.  Sirt2 deacetylase is a novel AKT binding partner critical for AKT activation by insulin.

Authors:  Gopalakrishnan Ramakrishnan; Gantulga Davaakhuu; Ludmila Kaplun; Wen-Cheng Chung; Ajay Rana; Azeddine Atfi; Lucio Miele; Guri Tzivion
Journal:  J Biol Chem       Date:  2014-01-20       Impact factor: 5.157

4.  SIRT1 in Astrocytes Regulates Glucose Metabolism and Reproductive Function.

Authors:  Irene Choi; Emily Rickert; Marina Fernandez; Nicholas J G Webster
Journal:  Endocrinology       Date:  2019-06-01       Impact factor: 4.736

Review 5.  SIRT1 and other sirtuins in metabolism.

Authors:  Hung-Chun Chang; Leonard Guarente
Journal:  Trends Endocrinol Metab       Date:  2013-12-30       Impact factor: 12.015

6.  Central Sirt1 regulates body weight and energy expenditure along with the POMC-derived peptide α-MSH and the processing enzyme CPE production in diet-induced obese male rats.

Authors:  Nicole E Cyr; Jennifer S Steger; Anika M Toorie; Jonathan Z Yang; Ronald Stuart; Eduardo A Nillni
Journal:  Endocrinology       Date:  2014-04-28       Impact factor: 4.736

Review 7.  Sirtuins-Mediated System-Level Regulation of Mammalian Tissues at the Interface between Metabolism and Cell Cycle: A Systematic Review.

Authors:  Parcival Maissan; Eva J Mooij; Matteo Barberis
Journal:  Biology (Basel)       Date:  2021-03-04

Review 8.  Systemic regulation of mammalian ageing and longevity by brain sirtuins.

Authors:  Akiko Satoh; Shin-ichiro Imai
Journal:  Nat Commun       Date:  2014-06-26       Impact factor: 14.919

Review 9.  Sirtuins: guardians of mammalian healthspan.

Authors:  William Giblin; Mary E Skinner; David B Lombard
Journal:  Trends Genet       Date:  2014-05-28       Impact factor: 11.639

Review 10.  Minireview: Central Sirt1 regulates energy balance via the melanocortin system and alternate pathways.

Authors:  Anika M Toorie; Eduardo A Nillni
Journal:  Mol Endocrinol       Date:  2014-06-20
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