ArticleScientific reports2024
High fat diet affects the hippocampal expression of miRNAs targeting brain plasticity-related genes.
Article in Scientific reports, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Effects of obesity on brain health and cognition.Nature reviews. Neurology · 2026Review
- Cognition at the core of metabolic syndrome: linking metabolic load to behavioural impairment in a longitudinal high-fat diet rat model.Brain, behavior, & immunity - health · 2026Article
- Green tea catechin EGCG attenuates hippocampal atrophy and cognitive impairment in obesity via autophagy signaling.NPJ science of food · 2026Article
- High-fat diet attenuates estradiol's efficacy on cognitive function and hippocampal synaptic plasticity in middle-aged ovariectomized mice.Physiological reports · 2026Article
- Mechanisms of Inflammation Chronification: Gene and Epigenetic Regulation of Intolerant Response (Trained Immunity).Current medicinal chemistry · 2026Article
- Neurobiochemical Effects of a High-Fat Diet: Implications for the Pathogenesis of Neurodegenerative Diseases.Biology · 2025Review
- Neuroprotection by Nauclea latifolia extract in arsenite & high-fat diet-induced brain stress.Environmental analysis, health and toxicology · 2025Article
- Diabetes and brain: omics approaches to study diabetic encephalopathy.Frontiers in endocrinology · 2025Review
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Authors and funding
9 authors.
Funding
Abstract
Metabolic disorders such as insulin resistance and type 2 diabetes are associated with brain dysfunction and cognitive deficits, although the underpinning molecular mechanisms remain elusive. Epigenetic factors, such as non-coding RNAs, have been reported to mediate the molecular effects of nutrient-related signals. Here, we investigated the changes of miRNA expression profile in the hippocampus of a well-established experimental model of metabolic disease induced by high fat diet (HFD). In comparison to the control group fed with standard diet, we observed 69 miRNAs exhibiting increased expression and 63 showing decreased expression in the HFD mice's hippocampus. Through bioinformatics analysis, we identified numerous potential targets of the dysregulated miRNAs, pinpointing a subset of genes regulating neuroplasticity that were targeted by multiple differentially modulated miRNAs. We also validated the expression of these synaptic and non-synaptic proteins, confirming the downregulation of Synaptotagmin 1 (SYT1), calcium/calmodulin dependent protein kinase I delta (CaMK1D), 2B subunit of N-methyl-D-aspartate glutamate receptor (GRIN2B), the DNA-binding protein Special AT-Rich Sequence-Binding Protein 2 (SATB2), and RNA-binding proteins Cytoplasmic polyadenylation element-binding protein 1 (CPEB1) and Neuro-oncological ventral antigen 1 (NOVA1) in the hippocampus of HFD mice. In summary, our study offers a snapshot of the HFD-related miRNA landscape potentially involved in the alterations of brain functions associated with metabolic disorders. By shedding light on the specific miRNA-mRNA interactions, our research contributes to a deeper understanding of the molecular mechanisms underlying the effects of HFD on the synaptic function.
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