Related Experiment Video
Updated: Jun 13, 2025

An Adipocyte Cell Culture Model to Study the Impact of Protein and Micro-RNA Modulation on Adipocyte Function
Published on: May 4, 2021
Palmitic acid promotes miRNA release from adipocyte exosomes by activating NF-κB/ER stress
Menghuan Li1, Yanting Hou1, Yao Chen1
1Medical College of Shihezi University, Bei-Er-Road, Shihezi, Xinjiang, China.
Objective:
The release of adipose tissue-derived miRNAs is increased under conditions of obesity, but the exact molecular mechanisms involved have not been elucidated. This study investigated whether obesity-induced increases in palmitic acid (PA) content could activate the NF-κB/endoplasmic reticulum stress (ER stress) pathway and promote the expression and release of exosomal miRNAs in adipocytes.
Methods:
Abdominal adipose tissue and serum samples were collected from normal weight individuals and people with obesity to clarify the correlation of serum PA content with NF-κB/ER stress and the release of exosomal miRNAs. NF-κB and ER stress were blocked in obese mice and in vitro cultured adipocytes to demonstrate the molecular mechanisms by which PA promotes the release of exosomal miRNAs.The morphology, particle size and distribution of the exosomes were observed via transmission electron microscopy and NTA.
Results:
Accompanied by increased serum PA levels, the NF-κB/ER stress pathway was activated in the adipose tissue of people with obesity and in high-fat diet (HFD)-induced obese mice; moreover, the levels of miRNAs in both adipose tissue and serum were increased. P-p65 (Bay11-7082) and ER stress (TUDCA) blockers significantly reduced the levels of miRNAs in abdominal adipose tissue and serum, decreased blood glucose levels, and improved glucose tolerance and insulin sensitivity in obese mice. In 3T3-L1 adipocytes, high concentrations of PA activated the NF-κB/ER stress pathway and increased the expression and release of miRNAs in exosomes. P-p65 (Bay11-7082) and ER stress (TUDCA) blockers significantly reversed the increased release exosomal miRNAs cause by PA.
Conclusions:
Obesity-induced increases in PA content increase the expression and release of miRNAs in adipocyte exosomes by activating the NF-κB/ER stress pathway.
Insights
Obesity increases palmitic acid (PA), activating the NF-κB/endoplasmic reticulum stress (ER stress) pathway. This promotes the release of exosomal microRNAs (miRNAs) from adipocytes, contributing to metabolic dysfunction.
Area of Science:
- Metabolic disease research
- Molecular biology
- Cellular signaling
Background:
- Obesity is linked to increased adipose tissue-derived microRNAs (miRNAs).
- The precise molecular mechanisms driving this release, particularly concerning palmitic acid (PA) and inflammatory pathways, remain unclear.
Purpose of the Study:
- To investigate if obesity-induced increases in palmitic acid (PA) activate the NF-κB/endoplasmic reticulum stress (ER stress) pathway.
- To determine if this activation promotes the expression and release of exosomal miRNAs in adipocytes.
Main Methods:
- Collected adipose tissue and serum from normal weight and obese individuals.
- Blocked NF-κB and ER stress in obese mice and cultured adipocytes.
- Utilized transmission electron microscopy and nanoparticle tracking analysis (NTA) for exosome characterization.
Main Results:
- Obesity and high-fat diets activated the NF-κB/ER stress pathway, correlating with increased serum PA and miRNA levels.
- Blocking NF-κB and ER stress in obese mice reduced miRNA levels, improved glucose metabolism, and insulin sensitivity.
- In adipocytes, PA activated the NF-κB/ER stress pathway, increasing exosomal miRNA expression and release, which was reversed by pathway blockers.
Conclusions:
- Obesity-induced palmitic acid (PA) activates the NF-κB/endoplasmic reticulum stress (ER stress) pathway.
- This activation enhances the expression and release of miRNAs within adipocyte exosomes.
More Related Videos
Related Concept Videos
Regulation of the Unfolded Protein Response
Regulation of Nuclear Protein Sorting
NF-κB-dependent Signaling Pathway
NF-κB-dependent Signaling Mechanism
The...
MicroRNAs
The Unfolded Protein Response

