Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Glucagon like peptide 1 (GLP-1) is an incretin hormone produced by the gut and brain, and is currently being used as a therapeutic drug for type 2 diabetes and obesity, suggesting that it regulates abnormal appetite patterns, and ameliorates impaired glucose metabolism. Many researchers have demonstrated that GLP-1 agonists and GLP-1 receptor agonists exert neuroprotective effects against brain damage. Palmitic acid (PA) is a saturated fatty acid, and increases the risk of neuroinflammation, lipotoxicity, impaired glucose metabolism, and cognitive decline. In this study, we investigated whether or not Exentin-4 (Ex-4; GLP-1 agonist) inhibits higher production of reactive oxygen species (ROS) in an SH-SY5Y neuronal cell line under PA-induced apoptosis conditions. Moreover, pre-treatment with Ex-4 in SH-SY5Y neuronal cells prevents neural apoptosis and mitochondrial dysfunction through several cellular signal pathways. In addition, insulin sensitivity in neurons is improved by Ex-4 treatment under PA-induced insulin resistance. Additionally, our imaging data showed that neuronal morphology is improved by EX-4 treatment, in spite of PA-induced neuronal damage. Furthermore, we identified that Ex-4 inhibits neuronal damage and enhanced neural complexity, such as neurite length, secondary branches, and number of neurites from soma in PA-treated SH-SY5Y. We observed that Ex-4 significantly increases neural complexity, dendritic spine morphogenesis, and development in PA treated primary cortical neurons. Hence, we suggest that GLP-1 administration may be a crucial therapeutic solution for improving neuropathology in the obese brain.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7827489PMC
http://dx.doi.org/10.3390/antiox10010078DOI Listing

Publication Analysis

Top Keywords

insulin resistance
8
impaired glucose
8
glucose metabolism
8
sh-sy5y neuronal
8
improved ex-4
8
ex-4 treatment
8
neuronal damage
8
neural complexity
8
ex-4
6
glp-1
5

Similar Publications

Effects of metformin on gut microbiota and short/mediumchain fatty acids in highfat diet rats.

Zhong Nan Da Xue Xue Bao Yi Xue Ban

May 2025

Department of Laboratory Animal Science, Xiangya School of Medicine, Central South University, Changsha 410013, China.

Objectives: Recent evidence suggests that the gut may be a primary site of metformin action. However, studies on the effects of metformin on gut microbiota remain limited, and its impact on gut microbial metabolites such as short-/medium-chain fatty acids is unclear. This study aims to investigate the effects of metformin on gut microbiota, short-/medium-chain fatty acids, and associated metabolic benefits in high-fat diet rats.

View Article and Find Full Text PDF

Aims: The estimated glucose disposal rate (eGDR) is a simple, non-invasive measure of insulin resistance. In this exploratory analysis of FINEARTS-HF, we evaluated whether lower eGDR, reflecting greater insulin resistance, is associated with adverse outcomes in heart failure (HF).

Methods And Results: The eGDR was calculated at baseline using waist circumference, glycated haemoglobin, and hypertension status.

View Article and Find Full Text PDF

Background: The gut microbiota plays a vital role in various physiological processes, including metabolism. Fecal microbiota transplantation (FMT) involves transferring fecal matter from a healthy donor to rebalance a patient's intestinal dysbiosis. The impact of FMT on metabolic syndrome (MetS) is subject to debate.

View Article and Find Full Text PDF

Diet regimes rich in fruits and vegetables have been adopted as effective strategies for the management of type 2 diabetes mellitus (T2DM). Here, we identified miR166e, a plant miRNA abundantly present in fruits and vegetables, as a functional agent that ameliorates T2DM in a mouse model. Orally administered miR166e oligomers passed through digestion, accumulated in the intestines at 14.

View Article and Find Full Text PDF

Mechanisms underlying cardiovascular, affective, and metabolic (CAM) multimorbidity are incompletely defined. We assessed how two risk factors-chronic stress (CS) and a Western diet (WD)-interact to influence cardiovascular function, resilience, adaptability, and allostatic load (AL); explore pathway involvement; and examine relationships with behavioral, metabolic, and systemic AL. Male C57Bl/6 mice (8 weeks old, n = 64) consumed a control (CD) or WD (12%-65%-23% or 32%-57%-11% calories from fat-carbohydrate-protein) for 17 weeks, with half subjected to 2 h daily restraint stress over the final 2 weeks (CD + CS and WD + CS).

View Article and Find Full Text PDF