Related Experiment Video
Updated: Sep 23, 2026

Assessment of Sarcoplasmic Reticulum Calcium Reserve and Intracellular Diastolic Calcium Removal in Isolated Ventricular Cardiomyocytes
Published on: September 18, 2017
Chronic diabetes increases advanced glycation end products on cardiac ryanodine receptors/calcium-release channels
Keshore R Bidasee1, Karuna Nallani, Yongqi Yu
1Department of Pharmacology, University of Nebraska Medical Center, Omaha 68198-6260, USA. kbidasee@unmc.edu
Abstract:
Decrease in cardiac contractility is a hallmark of chronic diabetes. Previously we showed that this defect results, at least in part, from a dysfunction of the type 2 ryanodine receptor calcium-release channel (RyR2). The mechanism(s) underlying RyR2 dysfunction is not fully understood. The present study was designed to determine whether non-cross-linking advanced glycation end products (AGEs) on RyR2 increase with chronic diabetes and if formation of these post-translational complexes could be attenuated with insulin treatment. Overnight digestion of RyR2 from 8-week control animals (8C) with trypsin afforded 298 peptides with monoisotopic mass (M+H(+)) >or=500. Digestion of RyR2 from 8-week streptozotocin-induced diabetic animals (8D) afforded 21% fewer peptides, whereas RyR2 from 6-week diabetic/2-week insulin-treated animals generated 304 peptides. Using an in-house PERLscript algorithm, search of matrix-assisted laser desorption ionization-time of flight mass data files identified several M+H(+) peaks corresponding to theoretical RyR2 peptides with single N(epsilon)-(carboxymethyl)-lysine, imidazolone A, imidazone B, pyrraline, or 1-alkyl-2-formyl-3,4-glycosyl pyrrole modification that were present in 8D but not 8C. Insulin treatment minimized production of some of these nonenzymatic glycation products. These data show for the first time that AGEs are formed on intracellular RyR2 during diabetes. Because AGE complexes are known to compromise protein activity, these data suggest a potential mechanism for diabetes-induced RyR2 dysfunction.
Insights
Chronic diabetes impairs heart function by damaging the type 2 ryanodine receptor calcium-release channel (RyR2). Advanced glycation end products (AGEs) form on RyR2 in diabetes, and insulin treatment may reduce this damage.
Area of Science:
- Biochemistry
- Cardiovascular Physiology
- Metabolic Diseases
Background:
- Chronic diabetes is associated with cardiac dysfunction.
- Type 2 ryanodine receptor calcium-release channel (RyR2) dysfunction contributes to diabetes-induced heart problems.
- The precise mechanisms of RyR2 dysfunction in diabetes remain unclear.
Purpose of the Study:
- To investigate the formation of non-cross-linking advanced glycation end products (AGEs) on RyR2 in chronic diabetes.
- To determine if insulin treatment can attenuate the formation of these AGEs on RyR2.
- To explore the potential role of AGEs in diabetes-related RyR2 dysfunction.
Main Methods:
- Proteomic analysis of RyR2 from control, diabetic, and insulin-treated diabetic animal models.
- Peptide identification using matrix-assisted laser desorption ionization-time of flight mass spectrometry.
- Quantification of RyR2 peptides and identification of specific AGE modifications using a custom algorithm.
Main Results:
- RyR2 from diabetic animals exhibited a 21% decrease in peptide yield compared to controls.
- Specific nonenzymatic glycation products (AGEs) were identified on RyR2 from diabetic animals but not in controls.
- Insulin treatment partially reduced the formation of some AGEs on RyR2.
Conclusions:
- Advanced glycation end products (AGEs) are formed on intracellular RyR2 in the context of chronic diabetes.
- The formation of AGEs on RyR2 represents a novel potential mechanism underlying diabetes-induced cardiac dysfunction.
- These findings highlight a potential therapeutic target for mitigating diabetic cardiomyopathy.
Related Concept Videos
Diabetic Nephropathy
Type II Diabetes II: Pathophysiology
Coronary Artery Disease I: Introduction
Diabetic Neuropathy
Type II Diabetes I: Introduction
Pathophysiology of Diabetes
Type 1 diabetes is characterized by autoimmune-mediated destruction of pancreatic β cells, with environmental factors potentially triggering this process in genetically susceptible individuals. Despite many not having a family history, certain genes increase susceptibility, suggesting a...
