A Negative Energy Balance Is Associated with Metabolic Dysfunctions in the Hypothalamus of a Humanized Preclinical Model of Alzheimer's Disease, the 5XFAD Mouse.
Antonio Jesús López-GamberoCristina Rosell-ValleDina Medina-VeraJuan Antonio NavarroAntonio VargasPatricia RiveraCarlos SanjuanFernando Rodríguez de FonsecaJuan SuarezPublished in: International journal of molecular sciences (2021)
Increasing evidence links metabolic disorders with neurodegenerative processes including Alzheimer's disease (AD). Late AD is associated with amyloid (Aβ) plaque accumulation, neuroinflammation, and central insulin resistance. Here, a humanized AD model, the 5xFAD mouse model, was used to further explore food intake, energy expenditure, neuroinflammation, and neuroendocrine signaling in the hypothalamus. Experiments were performed on 6-month-old male and female full transgenic (Tg5xFAD/5xFAD), heterozygous (Tg5xFAD/-), and non-transgenic (Non-Tg) littermates. Although histological analysis showed absence of Aβ plaques in the hypothalamus of 5xFAD mice, this brain region displayed increased protein levels of GFAP and IBA1 in both Tg5xFAD/- and Tg5xFAD/5xFAD mice and increased expression of IL-1β in Tg5xFAD/5xFAD mice, suggesting neuroinflammation. This condition was accompanied by decreased body weight, food intake, and energy expenditure in both Tg5xFAD/- and Tg5xFAD/5xFAD mice. Negative energy balance was associated with altered circulating levels of insulin, GLP-1, GIP, ghrelin, and resistin; decreased insulin and leptin hypothalamic signaling; dysregulation in main metabolic sensors (phosphorylated IRS1, STAT5, AMPK, mTOR, ERK2); and neuropeptides controlling energy balance (NPY, AgRP, orexin, MCH). These results suggest that glial activation and metabolic dysfunctions in the hypothalamus of a mouse model of AD likely result in negative energy balance, which may contribute to AD pathogenesis development.
Keyphrases
- mouse model
- insulin resistance
- type diabetes
- traumatic brain injury
- high fat diet induced
- cell proliferation
- stem cells
- poor prognosis
- metabolic syndrome
- lps induced
- lipopolysaccharide induced
- inflammatory response
- signaling pathway
- cerebral ischemia
- early onset
- white matter
- high fat diet
- binding protein
- neuropathic pain
- bone marrow
- polycystic ovary syndrome
- subarachnoid hemorrhage
- protein protein
- functional connectivity