» Articles » PMID: 20164094

An Intrinsic Gut Leptin-melanocortin Pathway Modulates Intestinal Microsomal Triglyceride Transfer Protein and Lipid Absorption

Overview
Journal J Lipid Res
Publisher Elsevier
Specialty Biochemistry
Date 2010 Feb 19
PMID 20164094
Citations 27
Authors
Affiliations
Soon will be listed here.
Abstract

Fat is delivered to tissues by apoB-containing lipoproteins synthesized in the liver and intestine with the help of an intracellular chaperone, microsomal triglyceride transfer protein (MTP). Leptin, a hormone secreted by adipose tissue, acts in the brain and on peripheral tissues to regulate fat storage and metabolism. Our aim was to identify the role of leptin signaling in MTP regulation and lipid absorption using several mouse models deficient in leptin receptor (LEPR) signaling and downstream effectors. Mice with spontaneous LEPR B mutations or targeted ablation of LEPR B in proopiomelanocortin (POMC) or agouti gene related peptide (AGRP) expressing cells had increased triglyceride in plasma, liver, and intestine. Furthermore, melanocortin 4 receptor (MC4R) knockout mice expressed a similar triglyceride phenotype, suggesting that leptin might regulate intestinal MTP expression through the melanocortin pathway. Mechanistic studies revealed that the accumulation of triglyceride in the intestine might be secondary to decreased expression of MTP and lipid absorption in these mice. Surgical and chemical blockade of vagal efferent outflow to the intestine in wild-type mice failed to alter the triglyceride phenotype, demonstrating that central neural control mechanisms were likely not involved in the observed regulation of intestinal MTP. Instead, we found that enterocytes express LEPR, POMC, AGRP, and MC4R. We propose that a peripheral, local gut signaling mechanism involving LEPR B and MC4R regulates intestinal MTP and controls intestinal lipid absorption.

Citing Articles

A brain-to-gut signal controls intestinal fat absorption.

Lyu Q, Xue W, Liu R, Ma Q, Kasaragod V, Sun S Nature. 2024; 634(8035):936-943.

PMID: 39261733 DOI: 10.1038/s41586-024-07929-5.


Fat absorption controlled by a brain-gut circuit.

Nature. 2024; .

PMID: 39261686 DOI: 10.1038/d41586-024-02932-2.


Signaling pathways in obesity: mechanisms and therapeutic interventions.

Wen X, Zhang B, Wu B, Xiao H, Li Z, Li R Signal Transduct Target Ther. 2022; 7(1):298.

PMID: 36031641 PMC: 9420733. DOI: 10.1038/s41392-022-01149-x.


Multi-organ Coordination of Lipoprotein Secretion by Hormones, Nutrients and Neural Networks.

Stahel P, Xiao C, Nahmias A, Tian L, Lewis G Endocr Rev. 2021; 42(6):815-838.

PMID: 33743013 PMC: 8599201. DOI: 10.1210/endrev/bnab008.


Role of the Gut in Diabetic Dyslipidemia.

Stahel P, Xiao C, Nahmias A, Lewis G Front Endocrinol (Lausanne). 2020; 11:116.

PMID: 32231641 PMC: 7083132. DOI: 10.3389/fendo.2020.00116.


References
1.
Morton N, Emilsson V, Liu Y, Cawthorne M . Leptin action in intestinal cells. J Biol Chem. 1998; 273(40):26194-201. DOI: 10.1074/jbc.273.40.26194. View

2.
Gallagher J, Weinberg R, Shelness G . apoA-IV tagged with the ER retention signal KDEL perturbs the intracellular trafficking and secretion of apoB. J Lipid Res. 2004; 45(10):1826-34. DOI: 10.1194/jlr.M400188-JLR200. View

3.
Hussain M, Rava P, Pan X, Dai K, Dougan S, Iqbal J . Microsomal triglyceride transfer protein in plasma and cellular lipid metabolism. Curr Opin Lipidol. 2008; 19(3):277-84. DOI: 10.1097/MOL.0b013e3282feea85. View

4.
Chua Jr S, Liu S, Li Q, Yang L, Thassanapaff V, Fisher P . Differential beta cell responses to hyperglycaemia and insulin resistance in two novel congenic strains of diabetes (FVB- Lepr (db)) and obese (DBA- Lep (ob)) mice. Diabetologia. 2002; 45(7):976-90. DOI: 10.1007/s00125-002-0880-z. View

5.
Millar J, Cromley D, McCoy M, Rader D, Billheimer J . Determining hepatic triglyceride production in mice: comparison of poloxamer 407 with Triton WR-1339. J Lipid Res. 2005; 46(9):2023-8. DOI: 10.1194/jlr.D500019-JLR200. View