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GM-CSF driven myeloid cells in adipose tissue link weight gain and insulin resistance via formation of 2-aminoadipate.

Citation
Plubell, D. L., et al. “Gm-Csf Driven Myeloid Cells In Adipose Tissue Link Weight Gain And Insulin Resistance Via Formation Of 2-Aminoadipate.”. Scientific Reports, p. 11485.
Center University of Washington
Author Deanna L Plubell, Alexandra M Fenton, Phillip A Wilmarth, Paige Bergstrom, Yuqi Zhao, Jessica Minnier, Jay W Heinecke, Xia Yang, Nathalie Pamir
Abstract

In a GM-CSF driven myeloid cell deficient mouse model (Csf2) that has preserved insulin sensitivity despite increased adiposity, we used unbiased three-dimensional integration of proteome profiles, metabolic profiles, and gene regulatory networks to understand adipose tissue proteome-wide changes and their metabolic implications. Multi-dimensional liquid chromatography mass spectrometry and extended multiplex mass labeling was used to analyze proteomes of epididymal adipose tissues isolated from Csf2 and Csf2 mice that were fed low fat, high fat, or high fat plus cholesterol diets for 8 weeks. The metabolic health (as measured by body weight, adiposity, plasma fasting glucose, insulin, triglycerides, phospholipids, total cholesterol levels, and glucose and insulin tolerance tests) deteriorated with diet for both genotypes, while mice lacking Csf2 were protected from insulin resistance. Regardless of diet, 30 mostly mitochondrial, branch chain amino acids (BCAA), and lysine metabolism proteins were altered between Csf2 and Csf2 mice (FDR < 0.05). Lack of GM-CSF driven myeloid cells lead to reduced adipose tissue 2-oxoglutarate dehydrogenase complex (DHTKD1) levels and subsequent increase in plasma 2-aminoadipate (2-AA) levels, both of which are reported to correlate with insulin resistance. Tissue DHTKD1 levels were >4-fold upregulated and plasma 2-AA levels were >2 fold reduced in Csf2 mice (p < 0.05). GM-CSF driven myeloid cells link peripheral insulin sensitivity to adiposity via lysine metabolism involving DHTKD1/2-AA axis in a diet independent manner.

Year of Publication
2018
Journal
Scientific reports
Volume
8
Issue
1
Number of Pages
11485
Date Published
12/2018
ISSN Number
2045-2322
DOI
10.1038/s41598-018-29250-8
Alternate Journal
Sci Rep
PMID
30065264
PMCID
PMC6068153
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