Search bioRxiv⌕ Search

Biology subjects

Iba, K.

Publications and source records attributed to Iba, K..

2 recordsLinked to original sources

Exacerbation of sucrose-induced visceral obesity and glucose intolerance by ovariectomy and its GLP-1-dependent amelioration by the rare sugar D-allulose

Estrogen deficiency after menopause promotes visceral fat accumulation and insulin resistance, thereby increasing the risk of type 2 diabetes. Although hormone replacement therapy is partially effective, its use is limited by increased risks of cardiovascular disease and breast cancer, underscoring the need for safer preventive strategies. The rare sugar D-allulose has been reported to stimulate glucagon-like peptide-1 (GLP-1), a gut hormone, secretion and to improve obesity and glucose metabolism, suggesting its potential as a novel intervention for postmenopausal metabolic dysfunction. Here, we examined whether D-allulose improves obesity and glucose intolerance in a GLP-1-dependent manner under sucrose-fed conditions, using ovariectomized (OVX) female C57BL/6J mice as a model of menopause. OVX mice, but not sucrose-fed sham mice, developed exacerbated visceral obesity and glucose intolerance in response to dietary sucrose, despite similar total energy intake. Daily oral administration of D-allulose for two weeks significantly suppressed visceral fat accumulation, improved insulin resistance, and ameliorated glucose intolerance in sucrose-fed OVX mice. These beneficial effects were markedly attenuated in GLP-1 receptor knockout mice. Taken together, we found that sucrose intake after ovariectomy exacerbates visceral obesity and glucose intolerance, and that D-allulose effectively ameliorates these metabolic abnormalities. GLP-1-stimulating dietary components such as D-allulose may represent a safe and promising preventive strategy for metabolic dysfunction associated with menopause.

physiology↗

Lateralized vagal oxytocin signaling separately controls feeding and socioemotional functions via hypothalamic oxytocin signaling

Oxytocin neurons in the paraventricular hypothalamus (PVHOxt) regulate feeding, anxiety, and social behaviors. Activation of Oxt receptor (Oxtr) -expressing vagal sensory neurons engages these PVHOxt neurons and improves hyperphagic obesity; however, their roles in anxiety and sociability remain unclear. Here, we activated vagal Oxtr-expressing neurons in male mice using a single intraperitoneal (IP) Oxt injection or chemogenetics. IP Oxt reduced anxiety-like behavior, enhanced social interaction, and suppressed feeding while activating both vagal sensory neurons and PVHOxt neurons. These effects were abolished by chemogenetic inhibition of PVHOxt neurons or central Oxtr blockade. Subdiaphragmatic vagotomy revealed lateralized functions: right-side vagotomy eliminated anxiolytic and prosocial effects, whereas left-side vagotomy blocked feeding suppression. Consistently, chemogenetic activation of left-sided neurons suppressed feeding, while right-sided activation reduced anxiety and increased sociability. These findings identify Oxtr-expressing vagal sensory neurons as a major peripheral pathway in which left- and right-sided inputs differentially control feeding and socioemotional behaviors.

physiology↗