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Biology subjects

Logan, S.

Publications and source records attributed to Logan, S..

2 recordsLinked to original sources

Metabolic benefits of 17α-estradiol in liver are partially mediated by ERβ in male mice

Metabolic dysfunction underlies several chronic diseases. Dietary interventions can reverse metabolic declines and slow aging but remaining compliant is difficult. 17-estradiol (17-E2) treatment improves metabolic parameters and slows aging in male mice without inducing significant feminization. We recently reported that estrogen receptor is required for the majority of 17-E2-mediated benefits in male mice, but that 17-E2 also attenuates fibrogenesis in liver, which is regulated by estrogen receptor {beta} (ER{beta})-expressing hepatic stellate cells (HSC). The current studies sought to determine if 17-E2-mediated benefits on systemic and hepatic metabolism are ER{beta}-dependent. We found that 17-E2 treatment reversed obesity and related systemic metabolic sequela in both male and female mice, but this was partially blocked in female, but not male, ER{beta}KO mice. ER{beta} ablation in male mice attenuated 17-E2-mediated benefits on hepatic stearoyl-coenyzme A desaturase 1 (SCD1) and transforming growth factor {beta}1 (TGF-{beta}1) production, which play critical roles in HSC activation and liver fibrosis. We also found that 17-E2 treatment suppresses SCD1 production in cultured hepatocytes and hepatic stellate cells, indicating that 17-E2 directly signals in both cell-types to suppress drivers of steatosis and fibrosis. We conclude that ER{beta} partially controls 17-E2-mediated benefits on systemic metabolic regulation in female, but not male, mice, and that 17-E2 likely signals through ER{beta} in HSCs to attenuate pro-fibrotic mechanisms.

physiology↗

Adulthood Deficiency of the Insulin-like Growth Factor-1 Receptor in Hippocampal Neurons Impairs Cell Structure and Spatial Learning and Memory in Male and Not Female Mice

Reductions in insulin-like growth factor-1 (IGF-1) are associated with cognitive impairment and increased risk of neurodegenerative disease in advanced age. In mouse models, reduced IGF-1 early-in-life leads to memory impairments and synaptic dysfunction; however, these models are limited by systemic reductions in IGF-1. We hypothesized that IGF-1 continues to promote hippocampal neuron structure and function after development, and as such, the loss of IGF-1 signaling in adult neurons would lead to impaired spatial learning and memory. To test this, the IGF-1 receptor (IGF-1R) was genetically targeted in hippocampal neurons of adult male and female mice. Male mice deficient in neuronal IGF-1R exhibited spatial learning impairments as evidenced by increased pathlength and errors in the radial arm water maze. No differences in learning and memory were observed in female mice. Golgi-Cox staining revealed a reduced number of dendritic boutons of neurons the CA1 region of the hippocampus in male mice. Decreased MAPK and increased ROCK activity were also observed in these tissues. In vitro studies revealed that impaired neurite outgrowth due to inhibited IGF-1R signaling could be rescued by pharmacological inhibitors of ROCK. However, ROCK inhibition in neuronal IGF-1R-deficient mice did not fully rescue learning impairments or bouton numbers. Together, our study highlights that IGF-1 continues to support spatial learning and memory and neuronal structure in adulthood.

neuroscience↗