Literature DB >> 25675362

Role of VGF-derived carboxy-terminal peptides in energy balance and reproduction: analysis of "humanized" knockin mice expressing full-length or truncated VGF.

Masato Sadahiro1, Connor Erickson, Wei-Jye Lin, Andrew C Shin, Maria Razzoli, Cheng Jiang, Samira Fargali, Allison Gurney, Kevin A Kelley, Christoph Buettner, Alessandro Bartolomucci, Stephen R Salton.   

Abstract

Targeted deletion of VGF, a secreted neuronal and endocrine peptide precursor, produces lean, hypermetabolic, and infertile mice that are resistant to diet-, lesion-, and genetically-induced obesity and diabetes. Previous studies suggest that VGF controls energy expenditure (EE), fat storage, and lipolysis, whereas VGF C-terminal peptides also regulate reproductive behavior and glucose homeostasis. To assess the functional equivalence of human VGF(1-615) (hVGF) and mouse VGF(1-617) (mVGF), and to elucidate the function of the VGF C-terminal region in the regulation of energy balance and susceptibility to obesity, we generated humanized VGF knockin mouse models expressing full-length hVGF or a C-terminally deleted human VGF(1-524) (hSNP), encoded by a single nucleotide polymorphism (rs35400704). We show that homozygous male and female hVGF and hSNP mice are fertile. hVGF female mice had significantly increased body weight compared with wild-type mice, whereas hSNP mice have reduced adiposity, increased activity- and nonactivity-related EE, and improved glucose tolerance, indicating that VGF C-terminal peptides are not required for reproductive function, but 1 or more specific VGF C-terminal peptides are likely to be critical regulators of EE. Taken together, our results suggest that human and mouse VGF proteins are largely functionally conserved but that species-specific differences in VGF peptide function, perhaps a result of known differences in receptor binding affinity, likely alter the metabolic phenotype of hVGF compared with mVGF mice, and in hSNP mice in which several C-terminal VGF peptides are ablated, result in significantly increased activity- and nonactivity-related EE.

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Year:  2015        PMID: 25675362      PMCID: PMC4398760          DOI: 10.1210/en.2014-1826

Source DB:  PubMed          Journal:  Endocrinology        ISSN: 0013-7227            Impact factor:   4.736


  44 in total

1.  Glucoprivation in the ventrolateral medulla decreases brown adipose tissue sympathetic nerve activity by decreasing the activity of neurons in raphe pallidus.

Authors:  C J Madden
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2011-11-09       Impact factor: 3.619

2.  Anatomical substrates for the central control of sympathetic outflow to interscapular adipose tissue during cold exposure.

Authors:  Georgina Cano; Alicia M Passerin; Jennifer C Schiltz; J Patrick Card; Shaun F Morrison; Alan F Sved
Journal:  J Comp Neurol       Date:  2003-06-02       Impact factor: 3.215

3.  A prohormone convertase cleavage site within a predicted alpha-helix mediates sorting of the neuronal and endocrine polypeptide VGF into the regulated secretory pathway.

Authors:  Angelo L Garcia; Shan-Kuo Han; William G Janssen; Zin Z Khaing; Timothy Ito; Marc J Glucksman; Deanna L Benson; Stephen R J Salton
Journal:  J Biol Chem       Date:  2005-10-12       Impact factor: 5.157

4.  Peptidomic identification and biological validation of neuroendocrine regulatory peptide-1 and -2.

Authors:  Hideki Yamaguchi; Kazuki Sasaki; Yoshinori Satomi; Takuya Shimbara; Haruaki Kageyama; Muhtashan S Mondal; Koji Toshinai; Yukari Date; Luis J González; Seiji Shioda; Toshifumi Takao; Masamitsu Nakazato; Naoto Minamino
Journal:  J Biol Chem       Date:  2007-07-03       Impact factor: 5.157

5.  Neuroendocrine regulatory peptide-1 and neuroendocrine regulatory peptide-2 influence differentially feeding and penile erection in male rats: sites of action in the brain.

Authors:  Maria Rosaria Melis; Fabrizio Sanna; Salvatora Succu; Gian Luca Ferri; Antonio Argiolas
Journal:  Regul Pept       Date:  2012-05-02

6.  The TLQP-21 peptide activates the G-protein-coupled receptor C3aR1 via a folding-upon-binding mechanism.

Authors:  Cheryl Cero; Vitaly V Vostrikov; Raffaello Verardi; Cinzia Severini; Tata Gopinath; Patrick D Braun; Maria F Sassano; Allison Gurney; Bryan L Roth; Lucy Vulchanova; Roberta Possenti; Gianluigi Veglia; Alessandro Bartolomucci
Journal:  Structure       Date:  2014-11-13       Impact factor: 5.006

7.  Neuroendocrine regulatory peptide-2 regulates feeding behavior via the orexin system in the hypothalamus.

Authors:  Koji Toshinai; Hideki Yamaguchi; Haruaki Kageyama; Takashi Matsuo; Keiichi Koshinaka; Kazuki Sasaki; Seiji Shioda; Naoto Minamino; Masamitsu Nakazato
Journal:  Am J Physiol Endocrinol Metab       Date:  2010-06-15       Impact factor: 4.310

Review 8.  A recurring problem with the analysis of energy expenditure in genetic models expressing lean and obese phenotypes.

Authors:  Andrew A Butler; Leslie P Kozak
Journal:  Diabetes       Date:  2010-02       Impact factor: 9.461

9.  Induction of uncoupling protein expression in brown and white adipose tissue by leptin.

Authors:  S P Commins; P M Watson; M A Padgett; A Dudley; G Argyropoulos; T W Gettys
Journal:  Endocrinology       Date:  1999-01       Impact factor: 4.736

10.  S6 kinase deletion suppresses muscle growth adaptations to nutrient availability by activating AMP kinase.

Authors:  Victor Aguilar; Samira Alliouachene; Athanassia Sotiropoulos; Andrew Sobering; Yoni Athea; Fatima Djouadi; Sylvain Miraux; Eric Thiaudière; Marc Foretz; Benoit Viollet; Philippe Diolez; Jean Bastin; Paule Benit; Pierre Rustin; David Carling; Marco Sandri; Renée Ventura-Clapier; Mario Pende
Journal:  Cell Metab       Date:  2007-06       Impact factor: 27.287

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  12 in total

1.  Embryonic ablation of neuronal VGF increases energy expenditure and reduces body weight.

Authors:  Cheng Jiang; Wei-Jye Lin; Masato Sadahiro; Andrew C Shin; Christoph Buettner; Stephen R Salton
Journal:  Neuropeptides       Date:  2016-12-20       Impact factor: 3.286

2.  Characterization of Gonadotrope Secretoproteome Identifies Neurosecretory Protein VGF-derived Peptide Suppression of Follicle-stimulating Hormone Gene Expression.

Authors:  Soon Gang Choi; Qian Wang; Jingjing Jia; Maria Chikina; Hanna Pincas; Georgia Dolios; Kazuki Sasaki; Rong Wang; Naoto Minamino; Stephen R J Salton; Stuart C Sealfon
Journal:  J Biol Chem       Date:  2016-07-27       Impact factor: 5.157

3.  Role of Hypothalamic VGF in Energy Balance and Metabolic Adaption to Environmental Enrichment in Mice.

Authors:  Grant D Foglesong; Wei Huang; Xianglan Liu; Andrew M Slater; Jason Siu; Vedat Yildiz; Stephen R J Salton; Lei Cao
Journal:  Endocrinology       Date:  2016-01-05       Impact factor: 4.736

4.  Unexpected partial correction of metabolic and behavioral phenotypes of Alzheimer's APP/PSEN1 mice by gene targeting of diabetes/Alzheimer's-related Sorcs1.

Authors:  Elysse M Knight; Henry H Ruiz; Soong Ho Kim; Jessica C Harte; Wilson Hsieh; Charles Glabe; William L Klein; Alan D Attie; Christoph Buettner; Michelle E Ehrlich; Sam Gandy
Journal:  Acta Neuropathol Commun       Date:  2016-02-25       Impact factor: 7.801

5.  VGF Peptide Profiles in Type 2 Diabetic Patients' Plasma and in Obese Mice.

Authors:  Filomena D'Amato; Barbara Noli; Laura Angioni; Efisio Cossu; Michela Incani; Irene Messana; Barbara Manconi; Paola Solinas; Raffaella Isola; Stefano Mariotti; Gian-Luca Ferri; Cristina Cocco
Journal:  PLoS One       Date:  2015-11-12       Impact factor: 3.240

6.  NPAS3 Regulates Transcription and Expression of VGF: Implications for Neurogenesis and Psychiatric Disorders.

Authors:  Dongxue Yang; Wenbo Zhang; Arshad Padhiar; Yao Yue; Yonghui Shi; Tiezheng Zheng; Kaspar Davis; Yu Zhang; Min Huang; Yuyuan Li; Li Sha
Journal:  Front Mol Neurosci       Date:  2016-11-08       Impact factor: 5.639

7.  The neuropeptide TLQP-21 opposes obesity via C3aR1-mediated enhancement of adrenergic-induced lipolysis.

Authors:  Cheryl Cero; Maria Razzoli; Ruijun Han; Bhavani Shankar Sahu; Jessica Patricelli; ZengKui Guo; Nathan A Zaidman; John M Miles; Scott M O'Grady; Alessandro Bartolomucci
Journal:  Mol Metab       Date:  2016-10-31       Impact factor: 7.422

8.  Behavioral abnormalities with disruption of brain structure in mice overexpressing VGF.

Authors:  Takahiro Mizoguchi; Hiroko Minakuchi; Mitsue Ishisaka; Kazuhiro Tsuruma; Masamitsu Shimazawa; Hideaki Hara
Journal:  Sci Rep       Date:  2017-07-05       Impact factor: 4.379

9.  Hypothalamic over-expression of VGF in the Siberian hamster increases energy expenditure and reduces body weight gain.

Authors:  Jo E Lewis; John M Brameld; Phil Hill; Cristina Cocco; Barbara Noli; Gian-Luca Ferri; Perry Barrett; Francis J P Ebling; Preeti H Jethwa
Journal:  PLoS One       Date:  2017-02-24       Impact factor: 3.240

10.  Neuropeptide VGF Promotes Maturation of Hippocampal Dendrites That Is Reduced by Single Nucleotide Polymorphisms.

Authors:  Joseph Behnke; Aneesha Cheedalla; Vatsal Bhatt; Maysa Bhat; Shavonne Teng; Alicia Palmieri; Charles Christian Windon; Smita Thakker-Varia; Janet Alder
Journal:  Int J Mol Sci       Date:  2017-03-11       Impact factor: 5.923

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