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New, L. E.

Publications and source records attributed to New, L. E..

2 recordsLinked to original sources

Insulin evokes release of endozepines from astrocytes of the NTS to modulate glucose metabolism

The central nervous system (CNS) plays a key role in regulating metabolic functions, but conditions like obesity and diabetes can disrupt this balance. Within the CNS, the nucleus of the solitary tract (NTS) in the dorsal vagal complex (DVC) controls glucose metabolism and feeding behaviour. In rodents, the NTS senses insulin and communicates with the liver to regulate glucose production. Even short-term exposure to a high-fat diet (HFD) can lead to insulin resistance and impair NTS function. However, we still know little about which cells in the NTS are sensitive to insulin. Our study aimed to identify these insulin-sensitive cells and understand how they affect glucose metabolism. We found that insulin receptors in astrocytes are crucial for the NTSs ability to regulate glucose production in the liver. Insulin evokes the release of endozepines from astrocytes, and injecting endozepines into the NTS reduces glucose production. The effect of endozepines within the NTS is mimicked by GABAA antagonists and prevented by an agonist, suggesting that insulin prompts astrocytes to release endozepines, which then attenuate GABAA receptor activity, ultimately reducing glucose production in the liver. Our study is the first to show that insulin-dependent release of endozepines from NTS- astrocytes is fundamental to control blood glucose levels, providing valuable insights into the mechanisms underlying insulin function within this specific region of the CNS.

neuroscience↗

Manipulating mitochondrial dynamics in the NTS prevents diet-induced deficits in brown fat morphology and activity

Brown adipose tissue (BAT) uptakes and metabolises both glucose and triglycerides to produce heat and is activated by the central nervous system (CNS) through direct noradrenergic sympathetic innervation. Dysregulation of signalling modules in selective CNS areas such as the nucleus of tractus solitarius (NTS) are linked with altered BAT activity, obesity and diabetes. High-fat diet (HFD)-feeding increases mitochondrial fragmentation in the NTS triggering insulin resistance, hyperphagia and weight gain. Here we sought to determine whether changes in mitochondrial dynamics in the NTS can affect BAT glucose uptake. Our findings demonstrated that short-term HFD feeding reduces BATs ability to take up glucose, as measured by PET/CT scan. However, inhibiting mitochondrial fragmentation in NTS-astrocytes of HFD-fed rats improved BAT glucose uptake while lowering blood glucose and insulin levels. Compared with HFD-fed rats, HFD fed animals, where mitochondrial fragmentation was inhibited in the NTS-astrocytes, had higher levels of catecholaminergic innervation of BAT, and did not present HFD-dependent infiltration of enlarged white fat droplets in the BAT. In regular chow-fed rats, increasing mitochondrial fragmentation in the NTS-astrocytes reduced BAT glucose uptake, catecholaminergic innervation and {beta}3-adrenergic receptor levels. Our data suggest that targeting mitochondrial dynamics in the NTS-astrocytes could be a beneficial strategy to increase glucose utilization and protect from developing obesity and diabetes.

neuroscience↗