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Garcia, J. N.

Publications and source records attributed to Garcia, J. N..

2 recordsLinked to original sources

Insulin at the Intersection of Thermoregulation and Glucose Homeostasis

Mammals are protected from changes in environmental temperature by altering energetic processes that modify heat production. Insulin is the dominant stimulus of glucose uptake and metabolism, which are fundamental for thermogenic processes. The purpose of this work was to determine the interaction of ambient temperature induced changes in energy expenditure (EE) on the insulin sensitivity of glucose fluxes. Short-term and adaptive responses to thermoneutral temperature (TN, [~]28{degrees}C) and room (laboratory) temperature (RT, [~]22{degrees}C) were studied in mice. This range of temperature does not cause detectable changes in circulating catecholamines or shivering and postabsorptive glucose homeostasis is maintained. We tested the hypothesis that a decrease in EE that occurs with TN causes insulin resistance and that this reduction in insulin action and EE is reversed upon short term (<12h) transition to RT. Insulin-stimulated glucose disposal (Rd) and tissue specific glucose uptake were assessed combining isotopic tracers with hyperinsulinemic-euglycemic clamps. EE and insulin-stimulated Rd are both decreased ([~]50%) in TN-adapted vs RT-adapted mice. When RT-adapted mice are switched to TN, EE rapidly decreases and Rd is reduced by [~]50%. TN-adapted mice switched to RT exhibit a rapid increase in EE, but whole body insulin-stimulated Rd remains at the low rates of TN-adapted mice. In contrast, whole body glycolytic flux rose with EE. This higher EE occurs without increasing glucose uptake from the blood, but rather by diverting glucose from glucose storage to glycolysis. In addition to adaptations in insulin action, insulin-independent glucose uptake in brown fat is exquisitely sensitive to thermoregulation. These results show that insulin action adjusts to non-stressful changes in ambient temperature to contribute to the support of body temperature homeostasis without compromising glucose homeostasis. HighlightsO_LIEnergy expenditure and insulin-mediated glucose fluxes are reduced in thermoneutral (TN)-adapted mice versus room laboratory temperature (RT)-adapted mice. C_LIO_LIReduced insulin sensitivity manifests in TN mice regardless of whether they are TN-adapted or short-term transitioned from RT-adapted to TN. C_LIO_LITN-adapted mice are resistant to the RT-induced increase in whole-body insulin sensitivity even though metabolic rate is increased. C_LIO_LITN-adapted mice switched to RT meets increased thermogenic needs, not by increasing glucose uptake, but by partitioning a greater fraction of glucose from glycogen storage to glycolysis. C_LIO_LIBrown fat glucose uptake sensitively increases with RT and decreases with TN by an insulin-independent mechanism. C_LI

physiology↗

Trem2 deficiency does not worsen metabolic function in diet-induced obese mice

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-/-) has been implicated in evoking adipose tissue dysfunction, but its role in worsening obesity-induced metabolic dysfunction is not 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 WT and Trem2-/- mice were fed low fat 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 prior 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) or when animals were challenged with a non-lethal dose of endotoxin. Collectively, we report a disassociation between adipose tissue remodeling 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.

physiology↗