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Biology subjects

Kaiser, U. B.

Publications and source records attributed to Kaiser, U. B..

2 recordsLinked to original sources

High-Fat Diet Induces Epigenetic and Metabolic Changes in Kisspeptin Neurons in Association with Obesity and Male Secondary Hypogonadism

BackgroundObesity and type 2 diabetes mellitus (T2D) are major risk factors for male hypogonadism, a disorder with multi-system impacts on health. However, the mechanisms underlying obesity-associated male secondary hypogonadism remain poorly understood. Here, we aimed to dissect dysfunction of the hypothalamic-pituitary-testicular (HPT) axis and elucidate underlying epigenetic mechanisms, using a high-fat diet mouse model. MethodsMale C57BL6 mice were fed standard chow or high-fat diet (HFD, 60% fat) for 16 weeks starting at age 6 weeks. Plasma testosterone levels, sperm counts, and gonadotropin responses to senktide and kisspeptin stimulation were assessed. HFD-induced transcription changes in the hypothalamic arcuate nucleus (ARC) were evaluted using bulk and single-cell RNA-sequencing. Genome-wide changes in 5-hydroxymethylcytosine (5hmC) were analyzed by hydroxymethyl-DNA immunoprecipitation sequencing (hMeDIP-seq). Functional relevance of 5hmC changes was evaluated by ectopic TET expression in an immortalized ARC Kiss1 neuron cell line and RT-qPCR. ResultsHFD-fed mice developed obesity, hyperglycemia, glucose intolerance, and insulin resistance, indicative of the development of a type 2 diabetes-like metabolic disorder. This was accompanied by low testosterone, reduced sperm counts, and unchanged basal luteinizing hormone (LH), consistent with obesity/T2D-associated male secondary hypogonadism, as observed clinically in humans. Impaired LH responses to senktide, a Kiss1 neuron activator, but not to kisspeptin itself, identified suppressed Kiss1 neuron function as a key mechanism underlying secondary hypogonadism. RNA-seq analysis revealed dysregulation of metabolic and neural pathways in Kiss1 neurons. hMeDIP-seq demonstrated widespread 5hmC alterations in the ARC of HFD-induced obese/diabetic mice, correlated with dysregulation of fatty acid metabolism, neuronal activity, and synapse function pathways. Ectopic TET expression ex vivo in Kiss1 neuronal cell lines restored 5hmC levels and upregulated key metabolic and neuronal genes that were repressed in the ARC of DIO mice ConclusionOur findings demonstrate that Kiss1 neurons are highly sensitive to diet and metabolic changes, and that obesity/diabetes-induced 5hmC modifications play a key role in dysregulating metabolic and neuronal pathways in Kiss1 neurons. These findings reveal a novel mechanism linking metabolic disturbances to reproductive dysfunction, through direct effects on Kiss1 neurons. Graphic Abstract O_FIG O_LINKSMALLFIG WIDTH=196 HEIGHT=200 SRC="FIGDIR/small/691258v1_ufig1.gif" ALT="Figure 1"> View larger version (48K): org.highwire.dtl.DTLVardef@c63ed7org.highwire.dtl.DTLVardef@147d439org.highwire.dtl.DTLVardef@be223corg.highwire.dtl.DTLVardef@b99499_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Changes in muscle strength and moderators of protein turnover in a rodent model of anorexia nervosa and recovery

Anorexia nervosa (AN) is a psychiatric disorder characterized by severe caloric restriction, leading to health complications. In addition to fat loss, AN also results in profound skeletal muscle loss, yet molecular pathways underlying these musculoskeletal complications or how long-lasting these musculoskeletal consequences may be are currently unknown. The purpose of this study was to investigate the effects of AN and subsequent weight recovery on muscle strength, size, and moderators of protein turnover in a rat model of AN. Female Sprague Dawley rats (n=11/group, 8 weeks of age) underwent 30 days of simulated AN (50-60% food restriction) followed by varying recovery periods. Muscle mass, strength, and protein synthesis/degradation pathways were assessed. AN led to substantial reductions in muscle mass and strength. While muscle mass recovered within 30 days, muscle strength remained depressed in rats with a prior history of AN, suggesting alterations to muscle quality. Moreover, moderators of protein synthesis (Igf1, Redd1, Deptor) remained altered following 30 days of AN and subsequent recovery. These findings suggest muscle impairments in AN may be longer-lasting than previously thought and may contribute to increased health complications and reduced quality of life in those with a history of AN.

physiology↗