Maintaining Myocardial Glucose Utilization in Diabetic Cardiomyopathy Accelerates Mitochondrial Dysfunction
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2020Metadata
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Wende, Adam R.
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Maintaining Myocardial Glucose Utilization in Diabetic Cardiomyopathy Accelerates Mitochondrial Dysfunction
Author
- Wende, Adam R.;
- Schell, John C.;
- Ha, Chae-Myeong;
- Pepin, Mark E.;
- Khalimonchuk, Oleh;
- Schwertz, Hansjörg;
- Pereira, Renata O.;
- Brahma, Manoja K.;
- Tuinei, Joseph;
- Contreras Ferrat, Ariel Eduardo;
- Wang, Li;
- Andrizzi, Chase A.;
- Olsen, Curtis D.;
- Bradley, Wayne E.;
- Dell’Italia, Louis J.;
- Dillmann, Wolfgang H.;
- Litwin, Sheldon E.;
- Abel, E. Dale;
Abstract
Cardiac glucose uptake and oxidation are reduced in diabetes despite hyperglycemia. Mitochondrial dysfunction contributes to heart failure in diabetes. It is unclear whether these changes are adaptive or maladaptive. To directly evaluate the relationship between glucose delivery and mitochondrial dysfunction in diabetic cardiomyopathy, we generated transgenic mice with inducible cardiomyocyte-specific expression of the GLUT4. We examined mice rendered hyperglycemic following low-dose streptozotocin prior to increasing cardiomyocyte glucose uptake by transgene induction. Enhanced myocardial glucose in nondiabetic mice decreased mitochondrial ATP generation and was associated with echocardiographic evidence of diastolic dysfunction. Increasing myocardial glucose delivery after short-term diabetes onset exacerbated mitochondrial oxidative dysfunction. Transcriptomic analysis revealed that the largest changes, driven by glucose and diabetes, were in genes involved in mitochondrial function. This glucose-dependent transcriptional repression was in part mediated byO-GlcNAcylation of the transcription factor Sp1. Increased glucose uptake induced directO-GlcNAcylation of many electron transport chain subunits and other mitochondrial proteins. These findings identify mitochondria as a major target of glucotoxicity. They also suggest that reduced glucose utilization in diabetic cardiomyopathy might defend against glucotoxicity and caution that restoring glucose delivery to the heart in the context of diabetes could accelerate mitochondrial dysfunction by disrupting protective metabolic adaptations.
Patrocinador
United States Department of Health & Human Services
National Institutes of Health (NIH) - USA
R00 HL111322
R01 HL133011
JDRF Advanced Postdoctoral Fellowship
10-2009-267
United States Department of Health & Human Services
National Institutes of Health (NIH) - USA
F30 HL137240
R01 GM108975
R01 DK092065
R01 HL108379
U01 HL087947
American Heart Association
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Diabetes 2020;69:2094–2111
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