Related Experiment Video
Updated: Jun 8, 2026

An Assay to Detect Protection of the Retinal Vasculature from Diabetes-Related Death in Mice
Published on: January 12, 2024
PP2A contributes to endothelial death in high glucose: inhibition by benfotiamine
1Department of Medicine, Center for Diabetes Research, Case Western Reserve University, Cleveland, Ohio 44106-4951, USA.
Abstract:
Endothelial death is critical in diabetic vascular diseases, but regulating factors have been only partially elucidated. Phosphatases play important regulatory roles in cell metabolism, but have not previously been implicated in hyperglycemia-induced cell death. We investigated the role of the phosphatase, type 2A protein phosphatase (PP2A), in hyperglycemia-induced changes in signaling and death in bovine aortic endothelial cells (BAEC). We explored also the influence of benfotiamine on this phosphatase. Activation of PP2A was assessed in BAEC by the extent of methylation and measurement of activity, and the enzyme was inhibited using selective pharmacological (okadaic acid, sodium fostriecin) and molecular (small interfering RNA) approaches. BAECs cultured in 30 mM glucose significantly increased PP2A methylation and activity, and PP2A inhibitors blocked these abnormalities. PP2A activity was increased also in aorta and retina from diabetic rats. NF-κB activity and cell death in BAEC were significantly increased in 30 mM glucose and inhibited by PP2A inhibition. NF-κB played a role in the hyperglycemia-induced death of BAEC, since blocking its translocation with SN50 also inhibited cell death. Inhibition of PP2A blocked the hyperglycemia-induced dephosphorylation of NF-κB and Bad, thus favoring cell survival. Incubation of benfotiamine with BAEC inhibited the high glucose-induced activation of PP2A and NF-κB and cell death, as well as several other metabolic defects, which likewise were inhibited by inhibitors of PP2A. Activation of PP2A contributes to endothelial cell death in high glucose, and beneficial actions of benfotiamine are due, at least in part, to inhibition of PP2A activation.
Insights
High glucose activates protein phosphatase 2A (PP2A), increasing endothelial cell death in diabetes. Benfotiamine inhibits PP2A activation, reducing cell death and offering therapeutic potential for diabetic vascular diseases.
Area of Science:
- Biochemistry
- Cell Biology
- Diabetology
Background:
- Endothelial cell death is a key factor in diabetic vascular complications.
- The role of phosphatases, specifically protein phosphatase 2A (PP2A), in hyperglycemia-induced endothelial cell death is not well understood.
Purpose of the Study:
- To investigate the role of PP2A in high glucose-induced endothelial cell death.
- To explore the influence of benfotiamine on PP2A activity and related signaling pathways.
Main Methods:
- Bovine aortic endothelial cells (BAECs) were cultured in high glucose (30 mM).
- PP2A activity was assessed via methylation and activity assays.
- Pharmacological (okadaic acid, sodium fostriecin) and molecular (siRNA) inhibitors were used to block PP2A.
- NF-κB activity, cell death, and protein dephosphorylation (NF-κB, Bad) were measured.
- Diabetic rat aorta and retina tissues were analyzed for PP2A activity.
- Benfotiamine's effects were evaluated in high glucose conditions.
Main Results:
- High glucose significantly increased PP2A methylation and activity in BAECs, which was reversed by PP2A inhibitors.
- Increased PP2A activity was also observed in the aorta and retina of diabetic rats.
- High glucose elevated NF-κB activity and endothelial cell death, both of which were reduced by PP2A inhibition.
- PP2A inhibition prevented the dephosphorylation of NF-κB and Bad, promoting cell survival.
- Benfotiamine mitigated high glucose-induced activation of PP2A, NF-κB, and cell death.
Conclusions:
- Activation of PP2A is a significant contributor to endothelial cell death under hyperglycemic conditions.
- Benfotiamine exerts protective effects against high glucose-induced endothelial damage, partly through the inhibition of PP2A activation.
Related Concept Videos
Type II Diabetes II: Pathophysiology
Type I Diabetes II: Pathophysiology
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
Diabetic Retinopathy
Diabetic Neuropathy