Related Experiment Video
Updated: May 31, 2025

Live Images of GLUT4 Protein Trafficking in Mouse Primary Hypothalamic Neurons Using Deconvolution Microscopy
Published on: December 7, 2017
Dysregulation of Metabolic Peptides Precedes Hyperinsulinemia and Inflammation Following Exposure to Rotenone in Rats
Vandana Zaman1,2, Denise Matzelle2, Naren L Banik1,2
1Ralph H. Johnson Veterans Administration Medical Center, 109 Bee Street, Charleston, SC 29401, USA.
Abstract:
Rotenone, a naturally occurring compound derived from the roots of tropical plants, is used as a broad-spectrum insecticide, piscicide, and pesticide. It is a classical, high-affinity mitochondrial complex I inhibitor that causes not only oxidative stress, α-synuclein phosphorylation, DJ-1 (Parkinson's disease protein 7) modifications, and inhibition of the ubiquitin-proteasome system but it is also widely considered an environmental contributor to Parkinson's disease (PD). While prodromal symptoms, such as loss of smell, constipation, sleep disorder, anxiety/depression, and the loss of dopaminergic neurons in the substantia nigra of rotenone-treated animals, have been reported, alterations of metabolic hormones and hyperinsulinemia remain largely unknown and need to be investigated. Whether rotenone and its effect on metabolic peptides could be utilized as a biomarker for its toxic metabolic effects, which can cause long-term detrimental effects and ultimately lead to obesity, hyperinsulinemia, inflammation, and possibly gut-brain axis dysfunction, remains unclear. Here, we show that rotenone disrupts metabolic homeostasis, altering hormonal peptides and promoting infiltration of inflammatory T cells. Specifically, our results indicate a significant decrease in glucagon-like peptide-1 (GLP-1), C-peptide, and amylin. Interestingly, levels of several hormonal peptides related to hyperinsulinemia, such as insulin, leptin, pancreatic peptide (PP), peptide YY (PYY), and gastric inhibitory polypeptide (GIP), were significantly upregulated. Administration of rotenone to rats also increased body weight and activated macrophages and inflammatory T cells. These data strongly suggest that rotenone disrupts metabolic homeostasis, leading to obesity and hyperinsulinemia. The potential implications of these findings are vast, given that monitoring these markers in the blood could not only provide a crucial tool for assessing the extent of exposure and its relevance to obesity and inflammation but could also open new avenues for future research and potential therapeutic strategies.
Insights
Rotenone exposure disrupts metabolic homeostasis, altering key hormonal peptides and promoting inflammation. This pesticide exposure leads to obesity and hyperinsulinemia, suggesting potential biomarkers for its toxic effects.
Area of Science:
- Environmental toxicology
- Metabolic research
- Neuroscience
Background:
- Rotenone, a pesticide, is linked to Parkinson's disease (PD) and causes mitochondrial dysfunction.
- While PD-related symptoms are known, rotenone's impact on metabolic hormones and hyperinsulinemia is understudied.
- Investigating rotenone's metabolic effects may reveal biomarkers for its toxicity, including obesity and inflammation.
Purpose of the Study:
- To investigate rotenone's effects on metabolic homeostasis, hormonal peptides, and inflammatory responses.
- To determine if rotenone exposure leads to obesity and hyperinsulinemia.
- To explore potential blood-based biomarkers for rotenone's toxic metabolic effects.
Main Methods:
- Rotenone was administered to rats to assess metabolic and inflammatory changes.
- Quantified levels of various hormonal peptides, including GLP-1, insulin, leptin, and others.
- Analyzed body weight, macrophage activation, and T cell infiltration.
Main Results:
- Rotenone significantly decreased glucagon-like peptide-1 (GLP-1), C-peptide, and amylin levels.
- Upregulated levels of insulin, leptin, pancreatic peptide (PP), peptide YY (PYY), and gastric inhibitory polypeptide (GIP) were observed.
- Rotenone administration increased body weight and promoted inflammatory cell infiltration.
Conclusions:
- Rotenone disrupts metabolic homeostasis, contributing to obesity and hyperinsulinemia.
- Altered hormonal peptides and inflammatory markers may serve as indicators of rotenone exposure and its metabolic consequences.
- Findings suggest potential for new research and therapeutic strategies targeting rotenone's metabolic toxicity.
Related Concept Videos
Feedback Loops
Regulation of Food Intake

