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Updated: Aug 30, 2025

Mechanism of Regulation of Adipocyte Numbers in Adult Organisms Through Differentiation and Apoptosis Homeostasis
Published on: June 3, 2016
Exon 2-mediated deletion of Trem2 does not worsen metabolic function in diet-induced obese mice
Nathan C Winn1, Elysa M Wolf1, Jamie N Garcia1
1Department of Molecular Physiology and Biophysics, Vanderbilt University, Nashville, TN, USA.
Abstract:
Triggering receptor expressed on myeloid cells 2 (Trem2) is highly expressed on myeloid cells and is involved in cellular lipid homeostasis and inflammatory processes. Trem2 deletion in mice (Trem2-/- ) evokes adipose tissue dysfunction, but its role in worsening obesity-induced metabolic dysfunction has not been resolved. Here we aimed to determine the causal role of Trem2 in regulating glucose homeostasis and insulin sensitivity in mice. Nine-week-old male and female littermate wild-type (WT) and Trem2-/- mice were fed a low- or high-fat diet for 18 weeks and phenotyped for metabolic function. Diet-induced weight gain was similar between genotypes, irrespective of sex. Consistent with previous reports, we find that loss of Trem2 causes massive adipocyte hypertrophy and an attenuation in the lipid-associated macrophage transcriptional response to obesity. In contrast to published data, we find that loss of Trem2 does not worsen metabolic function in obese mice. No differences in intraperitoneal glucose tolerance (ipGTT), oral GTT or mixed meal substrate control, including postprandial glucose, non-esterified fatty acids, insulin or triglycerides, were found between WT and Trem2-/- animals. Similarly, no phenotypic differences existed when animals were challenged with stressors on metabolic demand (i.e. acute exercise or environmental temperature modulation). Collectively, we report a disassociation between adipose tissue remodelling caused by loss of Trem2 and whole-body metabolic homeostasis in obese mice. The complementary nature of experiments conducted gives credence to the conclusion that loss of Trem2 is unlikely to worsen glucose homeostasis in mice.
Insights
Loss of Triggering Receptor Expressed on Myeloid Cells 2 (Trem2) in mice causes adipose tissue changes but does not worsen obesity-induced glucose intolerance or insulin resistance. Trem2 is unlikely to impact overall metabolic homeostasis in mice.
Area of Science:
- Immunology
- Metabolic Research
- Cell Biology
Background:
- Triggering receptor expressed on myeloid cells 2 (Trem2) is crucial for myeloid cell function, lipid homeostasis, and inflammation.
- Trem2 deficiency in mice leads to adipose tissue dysfunction, but its impact on obesity-related metabolic dysfunction remains unclear.
Purpose of the Study:
- To investigate the causal role of Trem2 in regulating glucose homeostasis and insulin sensitivity in mice under obesity conditions.
Main Methods:
- Wild-type (WT) and Trem2-deficient (Trem2-/-) mice were fed low- or high-fat diets for 18 weeks.
- Metabolic function was assessed through diet-induced weight gain, adipocyte size, macrophage response, glucose tolerance tests (ipGTT, oral GTT), and substrate control measurements.
- Mice were also challenged with acute exercise and environmental temperature changes to evaluate metabolic stress responses.
Main Results:
- Diet-induced weight gain was comparable between WT and Trem2-/- mice, regardless of sex.
- Trem2 deficiency resulted in significant adipocyte hypertrophy and altered macrophage transcriptional responses to obesity.
- No significant differences were observed in glucose tolerance, insulin sensitivity, or substrate control between genotypes.
- Metabolic responses to acute exercise or temperature challenges were similar in both WT and Trem2-/- mice.
Conclusions:
- Loss of Trem2 causes adipose tissue remodeling but does not exacerbate obesity-induced metabolic dysfunction in mice.
- There is a dissociation between Trem2-driven adipose tissue changes and whole-body metabolic homeostasis.
- These findings suggest Trem2 deficiency is unlikely to worsen glucose homeostasis in mice.
Related Concept Videos
Regulation of Metabolism
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