Differential regulation of nucleus accumbens glutamate and GABA in obesity-prone and obesity-resistant rats

被引:1
|
作者
Vollbrecht, Peter J. [1 ]
Nesbitt, Kathryn M. [2 ]
Addis, Victoria M. [1 ]
Boulnemour, Keenan M. [1 ]
Micheli, Daniel A. [1 ]
Smith, Kendall B. [1 ]
Sandoval, Darleen A. [3 ]
Kennedy, Robert T.
Ferrario, Carrie R. [4 ]
机构
[1] Western Michigan Univ, Homer Stryker MD Sch Med, Dept Biomed Sci, Kalamazoo, MI 49008 USA
[2] Univ Michigan, Dept Chem, Dept Pharmacol, Ann Arbor, MI USA
[3] Univ Colorado, Sch Med, Dept Pediat, Anshutz Med Campus, Aurora, CO USA
[4] Univ Michigan, Dept Pharmacol, Psychol Dept Biopsychol, Ann Arbor, MI 48109 USA
基金
美国国家卫生研究院;
关键词
TRANSPORTER GLT-1; PREEXISTING DIFFERENCES; MOTIVATION; FOOD; INTERNALIZATION; UBIQUITINATION; METABOLISM;
D O I
10.1111/jnc.15720
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Obesity is one of the leading health concerns in the United States. Studies from human and rodent models suggest that inherent differences in the function of brain motivation centers, including the nucleus accumbens (NAc), contribute to overeating and thus obesity. For example, there are basal enhancements in the excitability of NAc GABAergic medium spiny neurons (MSN) and reductions in basal expression of AMPA-type glutamate receptors in obesity-prone vs obesity-resistant rats. However, very little is known about the regulation of extracellular glutamate and GABA within the NAc of these models. Here we gave obesity-prone and obesity-resistant rats stable isotope-labeled glucose (C-13(6)-glucose) and used liquid chromatography mass spectrometry (LC-MS) analysis of NAc dialysate to examine the real-time incorporation of C-13(6)-glucose into glutamate, glutamine, and GABA. This novel approach allowed us to identify differences in glucose utilization for neurotransmitter production between these selectively bred lines. We found that voluntarily ingested or gastrically infused C-13(6)-glucose rapidly enters the NAc and is incorporated into C-13(2)-glutamine, C-13(2)-glutamate, and C-13(2)-GABA in both groups within minutes. However, the magnitude of increases in NAc C-13(2)-glutamine and C-13(2)-GABA were lower in obesity-prone than in obesity-resistant rats, while basal levels of glutamate were elevated. This suggested that there may be differences in the astrocytic regulation of these analytes. Thus, we next examined NAc glutamine synthetase, GAD67, and GLT-1 protein expression. Consistent with reduced C-13(2)-glutamine and C-13(2)-GABA, NAc glutamine synthetase and GLT-1 protein expression were reduced in obesity-prone vs obesity-resistant groups. Taken together, these data show that NAc glucose utilization differs dramatically between obesity-prone and obesity-resistant rats, favoring glutamate over GABA production in obesity-prone rats and that reductions in NAc astrocytic recycling of glutamate contribute to these differences. These data are discussed in light of established differences in NAc function between these models and the role of the NAc in feeding behavior.
引用
收藏
页码:499 / 511
页数:13
相关论文
共 50 条
  • [21] Dietary resistant starch dose-dependently reduces adiposity in obesity-prone and obesity-resistant male rats
    Belobrajdic, Damien P.
    King, Roger A.
    Christophersen, Claus T.
    Bird, Anthony R.
    NUTRITION & METABOLISM, 2012, 9
  • [22] Differences in the neuronal response to food in obesity-resistant as compared to obesity-prone individuals
    Cornier, Marc-Andre
    McFadden, Kristina L.
    Thomas, Elizabeth A.
    Bechtell, Jamie L.
    Eichman, Lindsay S.
    Bessesen, Daniel H.
    Tregellas, Jason R.
    PHYSIOLOGY & BEHAVIOR, 2013, 110 : 122 - 128
  • [23] High fat diet differentially regulates olfactory receptors in the duodenum of obesity-prone and obesity-resistant rats
    Primeaux, Stefany
    Braymer, H. Douglas
    Bray, George
    FASEB JOURNAL, 2012, 26
  • [24] Transection of Gustatory Nerves Differentially Affects Dietary Fat Intake in Obesity-Prone and Obesity-Resistant Rats
    Schreiber, Allyson
    Braymer, Hugh Douglas
    Primeaux, Stefany D.
    CHEMICAL SENSES, 2020, 45 (07) : 541 - 548
  • [25] CD Obesity-Prone Rats, but not Obesity-Resistant Rats, Robustly Ferment Resistant Starch Without Increased Weight or Fat Accretion
    Obanda, Diana
    Page, Ryan
    Guice, Justin
    Raggio, Anne M.
    Husseneder, Claudia
    Marx, Brian
    Stout, Rhett W.
    Welsh, David A.
    Taylor, Christopher M.
    Luo, Meng
    Blanchard, Eugene E.
    Bendiks, Zach
    Coulon, Diana
    Keenan, Michael J.
    OBESITY, 2018, 26 (03) : 570 - 577
  • [26] TIME-COURSE OF ADAPTATION TO A HIGH-FAT DIET IN OBESITY-RESISTANT AND OBESITY-PRONE RATS
    PAGLIASSOTTI, MJ
    KNOBEL, SM
    SHAHROKHI, KA
    MANZO, AM
    HILL, JO
    AMERICAN JOURNAL OF PHYSIOLOGY, 1994, 267 (03): : R659 - R664
  • [27] Olfactory bulbectomy increases food intake and hypothalamic neuropeptide Y in obesity-prone but not obesity-resistant rats
    Primeaux, Stefany D.
    Barnes, Maria J.
    Bray, George A.
    BEHAVIOURAL BRAIN RESEARCH, 2007, 180 (02) : 190 - 196
  • [28] Early metabolic differences between obesity-resistant and obesity-prone mice: role of adipokines
    Janovska, Petra
    Bardova, Kristina
    Horakova, Olga
    Hansikova, Jana
    Kus, Vladimir
    van Schothorst, Evert M.
    Hoevenaars, Femke P. M.
    Uil, Melissa
    Hensler, Michal
    Keijer, Jaap
    Kopecky, Jan
    PROCEEDINGS OF THE NUTRITION SOCIETY, 2016, 75 (OCE1) : E28 - E28
  • [29] Self-administered nicotine differentially impacts body weight gain in obesity-prone and obesity-resistant rats
    Rupprecht, Laura E.
    Smith, Tracy T.
    Donny, Eric C.
    Sved, Alan F.
    PHYSIOLOGY & BEHAVIOR, 2017, 176 : 71 - 75
  • [30] Intermittent access to a sucrose solution impairs metabolism in obesity-prone but not obesity-resistant mice
    Soto, Marion
    Chaumontet, Catherine
    Mauduit, Charles-David
    Fromentin, Gilles
    Palme, Rupert
    Tome, Daniel
    Even, Patrick
    PHYSIOLOGY & BEHAVIOR, 2016, 154 : 175 - 183