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Biology subjects

Henriksen, T. I.

Publications and source records attributed to Henriksen, T. I..

3 recordsLinked to original sources

Sex Hormone Binding Globulin Controls Gender Specific Lipolytic Activity in Human Abdominal Subcutaneous Adipocytes

Regulation of lipid metabolism is fundamental for metabolic health, and adipose tissue is a central component in this process. Adipose tissue differs dramatically between women and men with a higher subcutaneous capacity for storage and healthy metabolism in women. Sex hormone-binding globulin (SHBG) contributes to the regulation of circulating sex hormone bioavailability and has been shown to predict risk of metabolic dysfunction. We here investigate the sex-specific relationship of SHBG with metabolic status and adipocyte-dependent lipolysis. We measured serum concentrations of sex hormones, SHBG, fasting glucose and insulin in a cohort of 63 women and 27 men from which adipose biopsies were collected and mature adipocytes were isolated. We found that, in women, high serum SHBG concentrations were strongly associated with low HOMA-IR in vivo, and lower baseline lipolysis but higher responsiveness to isopropanol-induced lipolysis ex vivo. In contrast, no effect of SHBG on the above-mentioned parameters were observed in men. In vitro, cultured adipocytes also increased lipolytic capacity in response to SHBG, but only in the absence of testosterone, suggesting that testosterone inhibits the catecholmine-induced lipolysis of SHBG in adipose tissue. In conclusion, we here define a novel role for SHBG in adipocyte lipolysis. At the same time, our data emphasize sex-dependent differences in adipocyte lipid metabolism, and we propose testosterone binding to SHBG as a driving factor mediating these differences.

physiology↗

Brown Bears activates a Satiety Hormone Cholecystokinin (CCK) pathway in adipose tissue during hibernation

The brown bear (Ursus arctos) hibernates to survive cold winters without access to food. It builds enormous subcutaneous fat stores during summer and relies on it for energy during winter. Remarkably, the weight loss during winter occurs without muscle loss despite inactivity. Studying brown bear biology can therefore provide insights for improving human health in obesity and weight loss treatments. We here investigate subcutaneous adipose tissue biopsies obtained during summer and winter from free-living brown bears. During winter, a signature of genes involved in food intake and digestion is upregulated. Among these are several regulators of satiety, substrate transport and lipid metabolism. Interestingly, in humans these genes are enriched in distinct metabolic organs including, brain, intestine, stomach, liver and even salivary glands. We focused on the satiety brain/intestinal hormone cholecystokinin (CCK), which we demonstrate is produced in adipocytes, accompanied by an upregulation of the CCK receptor CCKBR. Importantly, CCK was undetectable in the circulation during winter and presence of sensory neurons suggest a neuronal feedback mechanism within the adipose tissue. Using RNA sequencing, we predict additionally 537 secreted proteins to be seasonally regulated, 37 of which could be confirmed with plasma proteomics. In conclusion, we propose that brown bears have developed a strategy of healthy fat burning and satiety regulation through an adipose tissue-contained mechanism which includes digestion factors and satiety mediators to provide safe energy turnover during hibernation-dependent weight loss.

molecular biology↗

An ultrasound-guided biopsy technique for obtaining supraclavicular brown fat biopsies and preadipocytes

Studying activated human brown adipose tissue (BAT) in vivo poses challenges due to its intricate anatomical positioning. Through the implementation of an ultrasound-guided biopsy technique, we successfully collected BAT samples from the supraclavicular region of 27 healthy individuals. As a comparative control, subcutaneous white adipose tissue (WAT) was similarly extracted from the same participants. Furthermore, we isolated progenitor cells from four tissue biopsies in both regions, subsequently subjecting them to a 12-day in vitro differentiation protocol following stimulation with 10 {micro}M norepinephrine. To assess the mRNA expression of thermogenic genes within these small tissue samples, we employed a targeted cDNA amplification procedure, followed by conventional quantitative PCR (qPCR). Our study demonstrated that, with further refinement, this biopsy methodology can be used to obtain thermogenic adipose tissue. However, the expression data exhibited considerable diversity, and no statistically significant overall trends emerged for any of the five BAT marker genes (UCP1, PPARGC1A, PRDM16, CIDEA, CITED1), nor for the WAT marker HOXC8. The differentiation capacity of the progenitor cells revealed irregularities, with only three adipocyte cultures (two WAT and one BAT) displaying satisfactory differentiation potential. Remarkably, the differentiated BAT culture displayed a significantly elevated basal UCP mRNA expression level, further induced by 1.7-fold upon stimulation with norepinephrine. In summary, based on the in vitro data, brown adipose samples can be obtained using our ultrasound-guided biopsy technique approach. However, significant refinements are necessary before robust in vivo data can be generated in future intervention studies.

physiology↗