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Updated: Jan 20, 2026
The Parasympathetic Nervous System
Exosomes derived from cardiac parasympathetic ganglionic neurons inhibit apoptosis in hyperglycemic cardiomyoblasts
Reetish Singla1, Kaley H Garner1, Mohtashem Samsam1
1Burnett School of Biomedical Sciences, University of Central Florida College of Medicine, 4110 Libra Dr., Orlando, FL, 32816, USA.
Abstract:
Diabetic cardiomyopathy is known to involve two forms of cardiac cell death: apoptosis and necrosis. However, it remains unknown whether hyperglycemia-induced apoptosis in the H9c2 cell culture system is inhibited by parasympathetic ganglionic neurons (PGN) derived exosomes (exos). We isolated PGN and sympathetic ganglionic neurons (SGN) from the right stellate ganglion in rats, and derived exos from these sources. H9c2 cells were divided into 4 groups: (1) Control, (2) H9c2 + Glucose (100 mmol/L), (3) H9c2 + Glucose + PGN-exos, and (4) H9c2 + Glucose + SGN-exos. We determined cell proliferation and viability with an MTT assay kit, and assessed apoptotic cell death with TUNEL staining and ELISA. Data were further confirmed by analyzing the presence of pro-apoptotic proteins Caspase-3 and Bax, and anti-apoptotic protein Bcl-2. Glucose exposed H9c2 cells significantly reduced cell viability, which was improved by PGN-exos, but not by SGN-exos. Furthermore, increased apoptosis in hyperglycemia in H9c2 cells was confirmed with TUNEL staining and cell death ELISA which demonstrated significantly (p < 0.05) reduction with PGN-exos treatment, but not with SGN-exos. Moreover, high expression of pro-apoptotic proteins Caspase-3 and Bax was reduced following treatment with PGN-exos; however, SGN-exos were unable to reduce the expression. Significantly reduced anti-apoptotic protein Bcl-2 following glucose treatment was improved with PGN-exos. Therefore, our data suggest that hyperglycemia induces apoptosis in H9c2 cells and decreases cell viability, and that PGN-exos are able to inhibit apoptosis, improve cell viability, and restore levels of anti-apoptotic protein Bcl-2.
Insights
Parasympathetic ganglionic neurons (PGN) derived exosomes protect against hyperglycemia-induced apoptosis in H9c2 cells. PGN exosomes improve cell viability and restore anti-apoptotic protein Bcl-2 levels, unlike sympathetic ganglionic neurons (SGN) exosomes.
Area of Science:
- Cardiovascular Biology
- Cell Death Mechanisms
- Diabetic Complications
Background:
- Diabetic cardiomyopathy involves apoptosis and necrosis.
- The role of specific neuronal exosomes in hyperglycemia-induced cardiac cell death is unclear.
Purpose of the Study:
- To investigate if parasympathetic ganglionic neurons (PGN) derived exosomes inhibit hyperglycemia-induced apoptosis in H9c2 cells.
- To compare the effects of PGN-exosomes versus sympathetic ganglionic neurons (SGN) exosomes.
Main Methods:
- H9c2 cells were exposed to high glucose (100 mmol/L) with or without PGN-exosomes or SGN-exosomes.
- Cell viability and proliferation were assessed using MTT assays.
- Apoptosis was evaluated via TUNEL staining, cell death ELISA, and analysis of Caspase-3, Bax, and Bcl-2 protein levels.
Main Results:
- High glucose significantly reduced H9c2 cell viability and increased apoptosis.
- PGN-exosomes treatment improved cell viability and significantly reduced apoptosis.
- PGN-exosomes decreased pro-apoptotic proteins (Caspase-3, Bax) and increased anti-apoptotic protein (Bcl-2), while SGN-exosomes had no significant effect.
Conclusions:
- Hyperglycemia induces apoptosis and reduces viability in H9c2 cells.
- PGN-derived exosomes effectively inhibit hyperglycemia-induced apoptosis.
- PGN-exosomes represent a potential therapeutic strategy for diabetic cardiomyopathy by improving cardiac cell viability.
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