Central and peripheral GLP-1 systems independently suppress eating

被引:170
作者
Brierley, Daniel I. [1 ]
Holt, Marie K. [2 ]
Singh, Arashdeep [3 ,4 ]
de Araujo, Alan [3 ,4 ]
McDougle, Molly [3 ,4 ]
Vergara, Macarena [3 ,4 ]
Afaghani, Majd H. [3 ,4 ]
Lee, Shin Jae [5 ]
Scott, Karen [3 ]
Maske, Calyn [3 ,4 ]
Langhans, Wolfgang [5 ]
Krause, Eric [3 ,4 ]
de Kloet, Annette [4 ,6 ]
Gribble, Fiona M. [7 ]
Reimann, Frank [7 ]
Rinaman, Linda [2 ]
de Lartigue, Guillaume [3 ,4 ]
Trapp, Stefan [1 ]
机构
[1] UCL, Dept Neurosci Physiol & Pharmacol, Ctr Cardiovasc & Metab Neurosci, London, England
[2] Florida State Univ, Program Neurosci, Dept Psychol, Gainesville, FL USA
[3] Univ Florida, Dept Pharmacodynam, Gainesville, FL 32610 USA
[4] Univ Florida, Ctr Integrat Cardiovasc & Metab Dis, Gainesville, FL 32609 USA
[5] Swiss Fed Inst Technol, Dept Hlth Sci & Technol, Zurich, Switzerland
[6] Univ Florida, Dept Physiol & Funct Genom, Gainesville, FL USA
[7] Univ Cambridge, Inst Metab Sci, Cambridge, England
基金
英国医学研究理事会; 美国国家卫生研究院; 英国惠康基金;
关键词
GLUCAGON-LIKE PEPTIDE-1; BEHAVIORAL SATIETY SEQUENCE; RECEPTOR-EXPRESSING CELLS; VAGAL AFFERENT NEURONS; PREPROGLUCAGON NEURONS; SENSORY NEURONS; SOLITARY TRACT; FOOD-INTAKE; MALE RATS; NUCLEUS;
D O I
10.1038/s42255-021-00344-4
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
GLP-1 is an incretin hormone and neuromodulator produced by gut enterocytes and CNS neurons. Brierley et al. find that GLP-1 from peripheral and central sources acts independently through distinct gut-brain circuits to suppress eating. The anorexigenic peptide glucagon-like peptide-1 (GLP-1) is secreted from gut enteroendocrine cells and brain preproglucagon (PPG) neurons, which, respectively, define the peripheral and central GLP-1 systems. PPG neurons in the nucleus tractus solitarii (NTS) are widely assumed to link the peripheral and central GLP-1 systems in a unified gut-brain satiation circuit. However, direct evidence for this hypothesis is lacking, and the necessary circuitry remains to be demonstrated. Here we show that PPG(NTS) neurons encode satiation in mice, consistent with vagal signalling of gastrointestinal distension. However, PPG(NTS) neurons predominantly receive vagal input from oxytocin-receptor-expressing vagal neurons, rather than those expressing GLP-1 receptors. PPG(NTS) neurons are not necessary for eating suppression by GLP-1 receptor agonists, and concurrent PPG(NTS) neuron activation suppresses eating more potently than semaglutide alone. We conclude that central and peripheral GLP-1 systems suppress eating via independent gut-brain circuits, providing a rationale for pharmacological activation of PPG(NTS) neurons in combination with GLP-1 receptor agonists as an obesity treatment strategy.
引用
收藏
页码:258 / +
页数:24
相关论文
共 68 条
[1]   Liraglutide Modulates Appetite and Body Weight Through Glucagon-Like Peptide 1 Receptor-Expressing Glutamatergic Neurons [J].
Adams, Jessica M. ;
Pei, Hongjuan ;
Sandoval, Darleen A. ;
Seeley, Randy J. ;
Chang, Rui B. ;
Liberles, Stephen D. ;
Olson, David P. .
DIABETES, 2018, 67 (08) :1538-1548
[2]   Chronic high fat diet impairs glucagon like peptide-1 sensitivity in vagal afferents [J].
Al Helaili, Alaa ;
Park, Sung Jin ;
Beyak, Michael J. .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2020, 533 (01) :110-117
[3]   Preproglucagon neurons in the hindbrain have IL-6 receptor-α and show Ca2+ influx in response to IL-6 [J].
Anesten, Fredrik ;
Holt, Marie K. ;
Schele, Erik ;
Palsdottir, Vilborg ;
Reimann, Frank ;
Gribble, Fiona M. ;
Safari, Cecilia ;
Skibicka, Karolina P. ;
Trapp, Stefan ;
Jansson, John-Olov .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2016, 311 (01) :R115-R123
[4]   Super-resolution microscopy compatible fluorescent probes reveal endogenous glucagon-like peptide-1 receptor distribution and dynamics [J].
Ast, Julia ;
Arvaniti, Anastasia ;
Fine, Nicholas H. F. ;
Nasteska, Daniela ;
Ashford, Fiona B. ;
Stamataki, Zania ;
Koszegi, Zsombor ;
Bacon, Andrea ;
Jones, Ben J. ;
Lucey, Maria A. ;
Sasaki, Shugo ;
Brierley, Daniel I. ;
Hastoy, Benoit ;
Tomas, Alejandra ;
D'Agostino, Giuseppe ;
Reimann, Frank ;
Lynn, Francis C. ;
Reissaus, Christopher A. ;
Linnemann, Amelia K. ;
D'Este, Elisa ;
Calebiro, Davide ;
Trapp, Stefan ;
Johnsson, Kai ;
Podewin, Tom ;
Broichhagen, Johannes ;
Hodson, David J. .
NATURE COMMUNICATIONS, 2020, 11 (01)
[5]   Genetic Identification of Vagal Sensory Neurons That Control Feeding [J].
Bai, Ling ;
Mesgarzadeh, Sheyda ;
Ramesh, Karthik S. ;
Huey, Erica L. ;
Liu, Yin ;
Gray, Lindsay A. ;
Aitken, Tara J. ;
Chen, Yiming ;
Beutler, Lisa R. ;
Ahn, Jamie S. ;
Madisen, Linda ;
Zeng, Hongkui ;
Krasnow, Mark A. ;
Knight, Zachary A. .
CELL, 2019, 179 (05) :1129-+
[6]   GLP-1 neurons form a local synaptic circuit within the rodent nucleus of the solitary tract [J].
Card, J. Patrick ;
Johnson, Aaron L. ;
Llewellyn-Smith, Ida J. ;
Zheng, Huiyuan ;
Anand, Rishi ;
Brierley, Daniel I. ;
Trapp, Stefan ;
Rinaman, Linda .
JOURNAL OF COMPARATIVE NEUROLOGY, 2018, 526 (14) :2149-2164
[7]   Leptin receptor-expressing nucleus tractus solitarius neurons suppress food intake independently of GLP1 in mice [J].
Cheng, Wenwen ;
Ndoka, Ermelinda ;
Hutch, Chelsea ;
Roelofs, Karen ;
MacKinnon, Andrew ;
Khoury, Basma ;
Magrisso, Jack ;
Kim, Ki Suk ;
Rhodes, Christopher J. ;
Olson, David P. ;
Seeley, Randy J. ;
Sandoval, Darleen ;
Myers, Martin G., Jr. .
JCI INSIGHT, 2020, 5 (07)
[8]   Distribution and characterisation of Glucagon-like peptide-1 receptor expressing cells in the mouse brain [J].
Cork, Simon C. ;
Richards, James E. ;
Holt, Marie K. ;
Gribble, Fiona M. ;
Reimann, Frank ;
Trapp, Stefan .
MOLECULAR METABOLISM, 2015, 4 (10) :718-731
[9]   Reporter mouse strain provides a novel look at angiotensin type-2 receptor distribution in the central nervous system [J].
de Kloet, Annette D. ;
Wang, Lei ;
Ludin, Jacob A. ;
Smith, Justin A. ;
Pioquinto, David J. ;
Hiller, Helmut ;
Steckelings, U. Muscha ;
Scheuer, Deborah A. ;
Sumners, Colin ;
Krause, Eric G. .
BRAIN STRUCTURE & FUNCTION, 2016, 221 (02) :891-912
[10]   Deletion of leptin signaling in vagal afferent neurons results in hyperphagia and obesity [J].
de Lartigue, Guillaume ;
Ronveaux, Charlotte C. ;
Raybould, Helen E. .
MOLECULAR METABOLISM, 2014, 3 (06) :595-607