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Adenylate kinase AK1 knockout heart: energetics and functional performance under ischemia-reperfusion
- Source :
- American Journal of Physiology : Heart and Circulatory Physiology, 283, H776-82, Scopus-Elsevier, American Journal of Physiology : Heart and Circulatory Physiology, 283, 2, pp. H776-82
- Publication Year :
- 2002
-
Abstract
- Deletion of the major adenylate kinase AK1 isoform, which catalyzes adenine nucleotide exchange, disrupts cellular energetic economy and compromises metabolic signal transduction. However, the consequences of deleting the AK1 gene on cardiac energetic dynamics and performance in the setting of ischemia-reperfusion have not been determined. Here, at the onset of ischemia, AK1 knockout mice hearts displayed accelerated loss of contractile force compared with wild-type controls, indicating reduced tolerance to ischemic stress. On reperfusion, AK1 knockout hearts demonstrated reduced nucleotide salvage, resulting in lower ATP, GTP, ADP, and GDP levels and an altered metabolic steady state associated with diminished ATP-to-Piand creatine phosphate-to-Piratios. Postischemic AK1 knockout hearts maintained ∼40% of β-phosphoryl turnover, suggesting increased phosphotransfer flux through remaining adenylate kinase isoforms. This was associated with sustained creatine kinase flux and elevated cellular glucose-6-phosphate levels as the cellular energetic system adapted to deletion of AK1. Such metabolic rearrangements, along with sustained ATP-to-ADP ratio and total ATP turnover rate, maintained postischemic contractile recovery of AK1 knockout hearts at wild-type levels. Thus deletion of the AK1 gene reveals that adenylate kinase phosphotransfer supports myocardial function on initiation of ischemic stress and safeguards intracellular nucleotide pools in postischemic recovery.
- Subjects :
- Gene isoform
Physiology
Ratón
Myocardial Ischemia
Ischemia
Adenylate kinase
Myocardial Reperfusion Injury
Biology
Phosphates
Mice
Adenosine Triphosphate
Bestudering van abnormale differentiatie en transformatieprocessen bij erfelijke of verworven aandoeningen m.b.v. cel- en diermodellen
Adenine nucleotide
Physiology (medical)
medicine
Animals
Glycolysis
Mice, Knockout
chemistry.chemical_classification
Myocardium
Adenylate Kinase
Heart
Study of abnormal differentiation and transformation processes in heritable and acquired disorders with the use of cell and animal models
medicine.disease
Myocardial Contraction
Enzyme
Biochemistry
chemistry
Signal transduction
Energy Metabolism
Cardiology and Cardiovascular Medicine
Subjects
Details
- ISSN :
- 03636135
- Database :
- OpenAIRE
- Journal :
- American Journal of Physiology : Heart and Circulatory Physiology, 283, H776-82, Scopus-Elsevier, American Journal of Physiology : Heart and Circulatory Physiology, 283, 2, pp. H776-82
- Accession number :
- edsair.doi.dedup.....50eb7ab704e90262d4cf70e70f7b301c