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Updated: Sep 20, 2026

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Protein kinase C beta inhibition and aorta and corpus cavernosum function in streptozotocin-diabetic mice
Matthew R Nangle1, Mary A Cotter, Norman E Cameron
1Department of Biomedical Sciences, Institute of Medical Sciences, University of Aberdeen, Foresterhill, Aberdeen AB25 2ZD, Scotland, UK.
Abstract:
Increased activity of the beta-isoform of protein kinase C (PKC) has been linked to the vascular and neural complications of diabetes mellitus. Treatment with the PKCbeta inhibitor, (s)-13-[(dimethylamino)methyl]-10,11,14,15-tetrahydro-4,9:16,21-dimetheno-1H,13H-dibenzo[e,k]pyrrolo[3,4-h][1,4,13]oxadiazacyclohexadecene-1,3(2H)-dione, (LY333531), improves somatic nerve function and blood flow in diabetic rats. The aim was to assess whether LY333531 treatment could prevent nitric oxide-dependent autonomic nerve and vascular dysfunction in a diabetic mouse model. Diabetes was induced by streptozotocin; duration was 4 weeks. Aorta and corpus cavernosum were isolated and mounted in organ baths and agonist or electrical stimulation-evoked nerve-mediated tension responses were examined. Maximum nitric oxide-mediated endothelium-dependent relaxation of phenylephrine-precontracted aorta and cavernosum to acetylcholine were more than 30% reduced by diabetes. LY333531 treatment (10 mg kg(-1) day(-1)) completely prevented the diabetic deficit in cavernosum, and 75% prevented the deficit in aorta. Maximum nitric oxide-dependent non-adrenergic, non-cholinergic (NANC) nerve-mediated relaxation of phenylephrine-precontracted cavernosum was approximately 43% reduced by diabetes; LY333531 attenuated the deficit by 44%. For diabetic aorta, but not cavernosum, sensitivity (EC50) to phenylephrine-mediated contraction was increased by approximately 0.85 log10 M units; LY333531 treatment completely prevented this effect. Thus, PKCbeta activation contributes to nitric oxide-dependent vascular and autonomic nerve dysfunction in diabetic mice and could prove suitable for further study in clinical trials of diabetic autonomic neuropathy and vasculopathy.
Insights
Protein kinase C beta (PKCbeta) inhibition with LY333531 prevents nitric oxide-dependent nerve and vascular dysfunction in diabetic mice. This suggests PKCbeta plays a key role in diabetic complications.
Area of Science:
- Pharmacology
- Diabetology
- Vascular Biology
- Neuroscience
Background:
- Increased protein kinase C beta (PKCbeta) activity is associated with diabetes complications.
- PKCbeta inhibitors, like LY333531, have shown promise in improving nerve function in diabetic rats.
- The role of PKCbeta in nitric oxide-dependent autonomic nerve and vascular dysfunction in diabetes remains to be fully elucidated.
Purpose of the Study:
- To investigate the efficacy of LY333531 in preventing nitric oxide-dependent autonomic nerve and vascular dysfunction in a diabetic mouse model.
- To assess the impact of LY333531 on endothelium-dependent and non-adrenergic, non-cholinergic (NANC) nerve-mediated relaxations in diabetic mice.
Main Methods:
- Diabetes was induced in mice using streptozotocin for 4 weeks.
- Isolated aorta and corpus cavernosum tissues were subjected to organ bath analysis.
- Agonist or electrical stimulation was used to examine nerve-mediated tension responses and nitric oxide-dependent relaxations.
Main Results:
- Diabetes significantly reduced nitric oxide-mediated relaxations in both aorta and corpus cavernosum.
- LY333531 treatment completely prevented the deficit in corpus cavernosum and 75% in the aorta.
- Diabetes increased aortic sensitivity to phenylephrine, an effect completely prevented by LY333531.
Conclusions:
- PKCbeta activation significantly contributes to nitric oxide-dependent vascular and autonomic nerve dysfunction in diabetic mice.
- LY333531 demonstrates potential in ameliorating these diabetic complications.
- The findings support further clinical investigation of LY333531 for diabetic autonomic neuropathy and vasculopathy.

